Field of Science

Sunday Protist -- Notodendrodes: giant tree forams

Foraminifera are wonderful organisms. For a glimpse of their phylogeny, see this diagram, but keep in mind that the majority of forams are actually allogromiids, forams which build their walls of protein as opposed to scavenged material or depositing mineral substances. From the allogromiids there have been several independent origins of non-proteinaceous forams, many building their tests out of sand grains, remnants of prey or their own waste. Test-building is a complicated and highly regulated process (many forams actually select sand grains with the right properties for building their tests!), a topic I should get around to eventually (not with those dark menacing storm clouds rapidly approaching from the horizon signalling the inevitable Armageddon finals). Thus, I figured that for this superficial protist appreciation post one can't go wrong with Notodendrodes, a genus of forams that look like trees!

Notodendrodes, like their sphaerical relative Rhabdammina, build their tests out of sand grains, especially quartz. Unlike Rhabdammina, they also have extensive "root" and "arborescent" structures sticking out of the sphaerical shell and into the sand and up in the air, respectively.

Notodendrodes antarctikos from the deep sea, arborescent structure. Image from Bowser lab, shamelessly stolen from certain course slides.

One must also note that forams extend far beyond their tests: they are surrounded by a complex network of extruded strands of cytoplasm forming the reticulopodia. These networks can be used to capture prey, absorb nutrients and, in some species, transport algal symbionts far outside the shell to harvest light energy. Notodendrodes lives too deep for housing photosynthetic symbionts; it is said to use its root pseudopodia for absorbing nutrients from the sediment and the arborescent network for sifting through the algal rain falling from the surface (Bowser Lab webpage on Notodendrodes ).

Notodendrodes hyalinosphaira. Scalebars: A,B - 2mm; C - 1cm; D - 5mm (DeLaca et al. 2002 J Foram Res)

These cells are quite sophisticated and should make great companions for cell biology research. The reticulopodia are able to move things along them (seems to be widespread feature among Rhizarians), and before you get the idea that these giant cells are docile and harmless, some forams can prey on small animals like copepods. There are some truly frightening micrographs in OR Anderson's Biology of Foraminifera.

Notodendrodes is apparently uninucleate. Wonder what ploidy levels would be needed to sustain such a monster-sized cell...

Anyway, this post fails to do justice to these organisms, but this week is simply awful for me, so I must leave it at that. My whole life is due this week. Also, I have three weeks left to finish wrapping up my current research project, and I'm having great difficulty focusing on it with all the course-related crap on top of it. Expect negligible blogging efforts in the next few weeks...

By the way, Mystery Micrograph #20 feels neglected. Do you guys need a few more micrographs for help?

Meanwhile, some random foram stuff to look at:

References
Bowser, S. (1995). Larger agglutinated foraminifera of McMurdo Sound, Antarctica: Are Astrammina rara and Notodendrodes antarctikos allogromiids incognito? Marine Micropaleontology, 26 (1-4), 75-88 DOI: 10.1016/0377-8398(95)00024-0

DeLaca, T. et al. (2002). NOTODENDRODES HYALINOSPHAIRA (SP. NOV.): STRUCTURE AND AUTECOLOGY OF AN ALLOGROMIID-LIKE AGGLUTINATED FORAMINIFER The Journal of Foraminiferal Research, 32 (2), 177-187 DOI: 10.2113/0320177

Irremediable Complexity: Notes from Ford Doolittle's seminar talk

While I work on polishing up Part II of the Neutral Evolution series, thought I'd write up and post my four pages of notes from Ford Doolittle's seminar talk today yesterday, while I can still remember what my scribbles were supposed to mean. As there's no unpublished data there, and a long-awaited paper on the subject has just been submitted, I believe it should be fair game for blogging. Coming from a vicious field (Arabidopsis, sigh...), I'm generally rather cautious about blogging department talks and such, but Constructive Neutral Evolution is a subject in need to spreading, and not a particularly competitive area at the moment...

Rosie has another summary of today's yesterday's talk, with an executive summary therein; she tried to scoop me, so clearly this means I must outdo her in length and verbosity =P

[If anything doesn't make sense, it's very likely an error on my part]
-----
Irremediable Complexity - Ford Doolittle, 07 Apr 2010
[paraphrased from notes; own comments in grey]
- Is each step in the evolution of a complex machine useful?

Irremediable complexity involves three factors: Tinkering, small populations, ratchets (Constructive Neutral Evolution). [prior to that, must discuss common views on complexity first]

Common views on complexity
- Directionality: 19th century - divine forces guide evolution; 20th century - orthogenesis - evolution exhibits a drive towards perfection (and complexity)
- Progress: Life started off being simple and became increasingly complex
But is there necessarily a trend?
(Gould 1996 Full House) The Drunkard's Walk: if one starts off at a limit that cannot be passed, random steps will eventually lead away from this limit. Presumably, life began more or less at the lower limit of complexity (specialised parasites aside), so it's bound to get more complex as it's the only way to go.
In fact, complexity is increased only in a few lineages, which also happen to be the ones we really like to look at.

So is the evolution of multicellular animals and plants from choanoflagellate-like and chlamydomonas-like organisms, respectively, a drunkard's walk or driven by something (eg. selection)?

Selectionist explanations
- Accumulation of specific adaptations results in complexity (eg. The Eye)
Another example: larger genome size is an adaptation for more gene regulation which is required in more complex organisms. [Note: C-value paradox, etc] Molecular biologists have an obsession with 'mystery DNA' having regulatory roles...
- Arms races, sexual selection
Greater biodiversity/more competition between organisms stimulates greater complexity, eg through niche specialisation and sex selection
- Evolving evolvability
Outdoing one's environmental changes by evolving faster. Eg. Exon shuffling as a function of introns: introns space out exons allowing more novel combinations of these exons to occur, which may be adaptive.
Caveat with evolvability -- it's a clade-selection level trait, not individual level.

Neutral forces - should be our null hypotheses
- Tinkering (FranΓ§ois Jacob) -- will still have traces of an apparatus' past functions along with new ones --> life is full of Rube Goldberg machines.
- Small population size -- mildly deleterious traits more likely to be fixed in smaller populations (Michael Lynch; more info in Part I of my Neutral Evolution series) Eukaryotes are a case of smaller population size relative to prokaryotes.
- Ratchets -- 1. Maynard-Smith & Szathmary's Major Transitions; 2. Stoltzfus & Covello's Constructive Neutral Evolution
Major Transitions: There are steps in evolution that are difficult or impossible to reverse -- act as ratchets.

Constructive Neutral Evolution: a previously fortuitous (non-functional) interaction can enable an otherwise-deleterious mutation to occur, resulting in a dependency upon this interaction. [a diagram is in the making]
More interactions evoke more opportunity for Constructive Neutral Evolution to drive (via ratchetting) an increase in complexity. [thus, the result would be an explosion of complexity past a certain threshold]
The dependency can be built up by other mutations, thus further solidifying the requirement for a given interaction.
Note that no positive selection is required at any step [only purifying], would also be more drastic in smaller populations where more deleterious mutations are fixed by drift. That said, positive selection can still play a role in parallel.

Examples:
Lambowitz's maturase-requiring group I self-splicing intron. [will be discussed in further detail in impending post] A derived Neurospora lineage requires a maturase for the splicing of group I introns whereas nearby relatives do not. Lambowitz later (2006) argues that maturase-mediated splicing evolved in response to the splicing problem, as opposed to enabling it to arise. This is putting the cart before the horse.

kDNA editosome (Trypanosomes et al.)
[Can be summed up in one interjection: whyyyyyyyyyyyyy???]
In summary, genes coded by the mitochondrial genome are non-sensical, and right after transcription the pre-mRNAs are edited by the complicated process involving templates and inserting various U's where they are needed.

There are several explanations that have been proposed:
- relic of the RNA world -- for starters, tryps are derived.
- to correct pre-existing mutations -- backwards logic again (cart before the horse)
- regulation
[Digression to discuss the two oft-conflated meanings of function]
1. Selected function -- how a trait got to be there
2. Current function -- what happens if trait is removed

Example from Maynard-Smith: Stiff back of the horse. Removal thereof would prevent humans from riding it, but no one can argue that the horse's back evolved so that humans could ride it in the future!

How editing really arose -- CNE [see Stoltzfus 1999 JME and Lukes et al 2009 PNAS(and subsequent correspondence)]: once the process started, it couldn't be reversed, thus complexity reached an absurd level.
"Absurdly complex spliceosome"
- if you think about it, it's "incredibly stupid" to have such a complex machine for removing introns
- cites "Five Easy Pieces" Sharp 1991 Science laying out a hypothesis for the evolution of group II introns
- see Lambowitz example for how the spliceosome may have arisen through initially-neutral protein interactions

Ribosome
Also by CNE. Roughly put, the RNA does most of the enzymatic work in the ribosome, with the proteins taking on more of a structural function. Presumably, initially the ribosome could've been entirely a ribozyme, picking up various proteins for supporting structural roles, like the Lambowitz intron, with the help of constructive neutral evolution.

Cited TW O'Brien 2003 IUBMB Life paper: the mammalian mitochondrial ribosome is smaller than that of its host (eukaryotic) yet larger than the prokaryotic counterpart; furthermore, many of the extra mitochondrial ribosomal proteins do not come from the eukaryote! This is a great example of convergence between the two separate evolutionary paths, both starting off with the small (at least in terms of protein count) prokaryotic ribosome and becoming bloated in complexity. Furthermore, mitochondria also have a greatly reduced effective population size, thereby encouraging the accumulation of complexity, unlike in their free-living bacterial brethren. [would be interesting to compare plastid, mitochondrial and eukaryotic ribosomal evolution, controlling for LGT, replacement, loss, and all the other crap associated with endosymbiosis, of course. A nice system with at least two independent replicates originating from very distantly-related sources]

[Another guy (unsure about citing personal communications without their knowledge) rather eloquently put it along the lines of "The rRNA was fully functional enzymatically on its own until the other shit stuck along for the ride"]


In closing, tinkering leads to klunkiness, smaller populations allow more mildly deleterious mutations, and ratchets make complexity ultimately unavoidable.

For another example of irremediable complexity, think what would happen if an institution was formed with a few small committees with specific functions and left alone for a few decades. Like a university. The bureaucracy and administrative complexity would increase while the overall efficiency of the system wouldn't benefit much. One can think of the complex biochemical pathways as "cellular bureaucracy".

"Complexity is unavoidable and largely irremediable: Resistance is useless"


-----
My initial impression of Ford Doolittle came from the whole 'missing Tree of Life' debacle, where he did appear rather rash and extremist, perhaps largely due to the media portrayal and associated uproar -- after his seminar talk and a more informal chat at lunch, I fully retract my first impressions, and must say that he's actually quite reasonable and not radical or extremist at all (and very pleasant and interesting to talk to). Naturally, science reporters reporters in general tend to hyperpolarise any slightest argument they chance upon, and turn anyone with a shred of an opinion into a flaming radical; thus it was another lesson to be extremely cautious about impressions you get about someone based on someone else's reporting. But another thing I've noticed is he seems less assertive in person than in his own papers as well. Well-balanced and subtle ideas seldom get the attention they deserve, so they must often be blown out of proportion to be at all noticed.

Perhaps this is another reason neutral theories remain so obscure: the adaptationists are occupied with explaining natural selection to creationists et al., thereby being much noisier and noticeable. The more balanced pluralists don't have much extremist thought to push, so they tend to get ignored (I find the Stoltzfus 1999 paper to be quite subtle and unassertive; perhaps that's why it was largely ignored).

Back to the ToL kerfuffle: If one were to say "LGT is very frequent in bacterial populations and may pose very substantial problems to reconstructing bacterial phylogeny and the deep history of life, perhaps even posing a valid question of whether such a phylogeny may truly ever be found", the statement is too reserved and subtle to make much of a splash beyond a small circle of specialists. However, if one goes all out and shouts "The Tree of Life is dead!", people actually turn around and look. Many misinterpret the message and get their own strange notions on the subject (often believed much more strongly than by the originator of the idea...), but at least some people get it and consider the problem.

Furthermore, the "Darwin was wrong" slant was intended to signal that we should get away from our Darwin fetish. I fully agree. Darwin was a great scientist, but it is outright immoral to ignore the hard work of thousands of people who came after him, and the thousands who are working in the field right now. Darwin may have sparked the field, but he is certainly not its most important element. The term "Darwinism" is vacuous and misleading, and should be abandoned soon. Furthermore, who cares what creationists think? Some of us are sick of having to change our vocabulary just because some religious idiot with an agenda could abuse it. The primary role of evolutionary biologists is to study evolutionary biology; educating the public is secondary (while still important); dealing with creationists is about last. Science educators are responsible for that. We cannot fight religion, especially its fundamentalist forms, with reason (hence why Dawkins fails at it). So what if they misunderstand and misrepresent Darwin? People misunderstand and misrepresent quantum mechanics even more, and yet physicists don't seem to lose sleep over it.

Political agendas will always be there; textbooks will always be influenced by the political (and sadly, religious) climate of the times. It sucks, but such is reality. History and the social sciences are also badly mangled in schools (eg. communism is still a topic not only taught entirely wrong, but also characterised by a blunt refusal to listen to those who may know better). After all, to understand science effectively, one must appreciate the subject, and be willing to not only accept, but commit work to it. The unwilling will never learn unless they want to. What is of a much higher importance than defending Darwin is promoting the overall public image of science and academia in general, and making academic activity 'cool' in the eyes of the public. If scientists were well-respected in 1970's Russia, there's no reason we can't acheive that again and in a different society. But it will take work.

But to get that to work, we must strive to suppress our polarising tendencies and recognise that often people's opinions are more subtle than they appear. We must also pay greater attention to ideas that are not pushed as aggressively as others, such as constructive neutral evolution. Those may well be more refined and ready for acceptance than the ideas cast in apparent simplicity and loudness.

References:
O'Brien, T. (2003). Properties of Human Mitochondrial Ribosomes IUBMB Life (International Union of Biochemistry and Molecular Biology: Life), 55 (9), 505-513 DOI: 10.1080/15216540310001626610

Sharp PA (1991). "Five easy pieces". Science (New York, N.Y.), 254 (5032) PMID: 1948046

Stoltzfus, A. (1999). On the Possibility of Constructive Neutral Evolution Journal of Molecular Evolution, 49 (2), 169-181 DOI: 10.1007/PL00006540

Slow blogging alert...

As you may or may not have noticed, it's April. April is a very special time for some poor fucks students. This is where this wonderful bi-/tri-annual hazing ritual occurs wherein a tribesman is placed before a patterned sheet of paper and scribbles along for a predetermined duration of time, Subsequently, a tribesman of a higher rank employs these scribbled sheets of paper in a peculiar ritual of divination rite, wherein markings (usually in red ink) are splattered all over to determine the worth (and fate) of the tribesman in question. A certain number of these rituals must be committed over 4-6 years before the tribesman has accomplished the initation rite successfully, upon which he or she dons peculiar medieval robes and is said to now be of a higher rank. These robes seem to reflect the colouration scheme of the respective clan the tribesman belongs to.

Long story short, I haz finals looming ahead. April isn't as bad as December (we actually get to see sunlight, which is kind of cool), but I must also wrap up my current project and write everything up, and as you may know, wrapping up one's research can be an epic pain in the ass. Why does it seem easier to write up other people's research rather than your own?

Also, there's like term papers and presentations and stuff. And taxes. And other gov't paperwork. And holy crap I don't wanna think about how I'm gonna survive this month. Thus, blogging will probably be reduced, and happen [even more] in sporadic bursts (procrastination is sort of quantised...). Kind of stressed at the moment, and the more stuff I have to do, the less I can focus on any given item in the list. Really annoying, to be honest.

That said, Sunday Protist and the continuation to the Neutral Evolution posts are on their way, and apologies for the delay. Actually, I think I'll wait until Wed to finish the next installment on Constructive Neutral Evolution, as Ford Doolittle is giving a talk on that at a dept seminar (sooo excited!) Would make sense to blog about that after his talk.

But yeah, apologies in advance for sub-par blogging until May. And why do I have to absorb the Canadian obsession with incessant apologising despite not actually being Canadian? Grrr...sorry about that! =P

On coordinate systems and polarisation in science

While reading and writing about neutral evolution, the theme of polarisation in science (pitting of ideas against each other) comes up a lot. Coincidentally, today I had a discussion with someone about group selection and the tendency of issues in academia (and elsewhere in life) to get grotesquely hyperpolarised. A frequent tactic used perhaps almost subconsciously is to pick the most extreme nutcase example from the side you argue against, and use it to represent the entire subfield. Also known as strawman arguments.

This is done almost ubiquitously in academia, and is often not even recognised as a common phenomenon. Perhaps it's some effect of our tribalistic tendencies, I don't know. Government politics is also quite similar. But at least one could be better informed about how their discipline works to be able to correct for some of it on the individual level. I think these practical aspects of philosophy and sociology of science (real fields, btw -- there are people out there who go into science labs and study labrats...very meta.) should be taught along with basic stats and hypothesis testing. Knowing how your field -- and academia in general -- works is arguably more important than memorising Rho GTPase associated pathways.

Curiously, perhaps some of the vicious arguments in science, such as group-level vs. individual-level selection, are actually similar to arguing over the superiority of cartesian vs. polar coordinates in math, rather than using the optimal one for the given circumstances. That is, if you have a flat plane to model, you'd probably go with cartesian coordinates where it's very easy to describe; defining a plane by polar coordinates is cumbersome and absurd (in most cases). Conversely, describing spherical objects would probably favour polar coordinates which simply work better for that type of thing. Similarly, depending on what you're trying to model, you can pick whether group selection or individual selection best fits the situation. Just like both polar and cartesian coordinates exist in the same reality and are ultimately interconvertible, group and individual selection are also both extant and suitable for different situations. The war is utterly unnecessary.

I like that analogy so much I'll breech my own policy of avoiding exposing who I happen to interact with and attribute it to its author -- Wayne Maddison. Now I wonder how many other raging wars in evolutionary theory and beyond are actually arguing over the existence of polar vs. cartesian coordinate systems... selectionism vs. neutralism is one such area that comes to mind.

People in science seriously need to stop obsessing over having a single all-encompassing model for everything, especially in messy fields like biology (fields that deal with real world data, that is). Theoretically, it all does boil down to quantum physics+relativity (or whatever the hypothetical unified version of that would be), but almost any biologist will tell you we actually could care less. Some models are more practical in given situations than others. That doesn't mean one is absolutely superior to another. In order to get anyone, one has to be rather pragmatic. Unless there are actually people in science who think our business is dealing with The Truth. I sincerely hope only undergrads can be that deluded...

PS: Neutral evol part II on its way, not tonight though: really tired and test tomorrow =(

In defense of constructive neutral evolution - Part I

Caution: What follows is mostly an opinion piece by an undergrad. While said undergrad has done a fair amount of reading on the topic, the post is still subject to many errors. Tread carefully. [/disclaimer]

ResearchBlogging.orgI won't go into an all-out discussion of neutral evolution here: I'm neither qualified enough nor have enough spare time at the moment. However, some issues seem to crop up multiple times, both here and on other blogs. I figured I'd try to briefly adress some of them, although do take my discussion with a grain of salt. That said, while neutral theory require a certain amount of effort to grasp properly (just like any other aspect of evolutionary biology), it is not something worth dismissing. In fact, if you consider how horribly misunderstood evolutionary biology is on the whole (even among grad students: Gregory & Ellis 2008 BioScience), the neutral elements of evolution seem to be understood by a very small fraction of biologists even.

Perhaps part of the problem is that adaptive evolution is just...flashier. It makes for fun and fairly simple stories: Eg. the peacock has a huge tail to signal to the females that it has nice genes that would compensate for the problems it causes. This "Good Genes" theory is actually taught in first year curricula, and makes very little sense upon further examination, and definitely does not survive Occam's Razor. A simpler explanation would, of course, entail something like runaway sexual selection (ie. female happened to prefer flashy tail, males with flashier tails outcompete their dimmer counterparts, tail gets longer) or that the tail may have a more important function, like scaring away predators. In any case, the adaptive approach very often results in what is mostly a story-telling exercise, and one that is very difficult to deal with experimentally. Worst of all, those stories very easily make sense upon first glance, and thus the field becomes cluttered with poorly thought out theories that sound reasonable.

This post became way too long, so I broke it up into three parts; table of contents here:
Part I
-Adaptationism vs. Neutralism
-"Population genetics ignores reality!"
-Existence of neutrality and near-neutrality
Part II
-Neutral evolution is relevant
-Evolution lacks foresight; it can neither anticipate nor respond
-Rise of complexity through non-adaptive means
-Further examples of constructive neutral evolution
Part III
-Discussion of what sparked this argument: Evolution of ciliate nuclear dimorphism

Adaptationism vs. Neutralism
Of course, none of what I said is new by any margin: the famous Gould and Lewontin 1979 Spandrels of San Marco (free access) paper does a nice job at pointing out many of the fallbacks of panadaptationism. And I don't find it much of an 'attack', as it is often described by diehard adaptationists, but perhaps that's just me. Since so many before me have pointed out the fallbacks of the 'adaptationist programme', I won't bother dwelling on it any further. Besides, this type of thing causes a great polarising effect on the community, with people being either hardcore adaptationists or hardcore neutralists. This seriously fucks up any progress on the topic, because biology hardly tolerates dichotomies. In fact, the truth in this case does not even lie 'somewhere in the middle', but in the fact that both adaptive and neutral processes work in tandem.

Let me reiterate that: Selective and neutral mechanisms work in tandem. Simultaneously. In some situations (eg. large effective population sizes, in bacteria; Lynch 2007 PNAS, Yi 2005 Bioessays), adaptive processes are more dominant; in some cases, adaptive 'forces' are negligible compared to neutral phenomena (small effective population sizes). Considering some specific structure, parts of its evolutionary history have been driven more by drift and mutational bias, interspersed with parts dominated by selective pressures. It's not like selection takes a nap for a while, and then gets back to work while drift, bias et al. chill out. There is no point to dismiss one or the other, like so many tend to do.

Curiously, I've heard numerous times that "Well, maybe selection is less important for bacteria, but it is the dominant force in vertebrates". How hilarious is it that any population geneticist will tell you the exact opposite: bacteria are under overwhelming selective pressure due to their freaking massive effective pop sizes, meaning that drift is much less effective in that situation relative to selection. Vertebrates are actually an awesome example of selection going rather easy: being a large multicellular thing with a backbone is a damn stupid way to copy your genes. Seriously!

Now, you may wonder why should anyone who's not an evolutionary biologist care about any of this? For a cell or developmental biologist, why not assume everything is there for a reason?

Because this leads to rather convoluted explanations for things. Take signalling pathways, for example. Is there any particular reason you have tens of genes required to turn on a particular behaviour in the end when you could've 'designed' it instead to use only one or two? Here we have again a problem with the adaptationist approach: you can pretty much always think of some reason why something is 'useful' or adaptive. That doesn't make it right. What if some features of these pathways originally evolved as a form of adaptively-neutral 'bloating' of the system? See Lynch 2007 PNAS, Lynch 2007 Nature Rev Genet for more on non-adaptive processes in evolution of genetic pathways. (Or just stop reading this post and go through this short list instead ;-)).

"Population genetics ignores reality!"
Now, there's some complaints that popgen kind of fails at taking reality into account. For some work in the field, that is true -- just like in any other field. Did you seriously think everyone, to the last moron, is in touch with reality in your field? If so, I'd love to hear! (no philosophers need apply, heh... although to be fair, there are some 'fringe lunatics' there who actually make sense by our standards.) That said, mathematical modeling requires simplifications to be made to get somewhere. If you have a problem with that, note all those humanities scholars who are sneering at us because we make simplifications as scientists! They wisely take the easy way out and conclude that reality is a social construct and understanding is actually impossible and thus not worthy losing sleep over...

Good mathematical biologists note their simplifications, keep track of them, and know when to simplify what, and what the limitations of their models are. Even better mathematical biologists test their models empirically, thereby producing work that is truly relevant to the rest of us. In my [admittedly still quite inexperienced] opinion, Michael Lynch belongs to that category. Seriously, I despised and dismissed the entire field of population genetics as well, and thanks to some of his papers realised it's probably not a very good idea to do that. In a field as messy as biology, any tidbit of information, even if it comes from simulations, is not only valuable, but essential to the very hope of sorting stuff out. We, that is -- all biologists -- are in no position to discard entire fields because of our petty tribalistic snobbery. Tread with caution -- yes. Dismiss without a second thought -- absolutely not.

Existence of neutrality and near-neutrality
To touch on the existence of 'true' neutrality, let me show you a few diagrams. The first one outlines the history of selectionist and neutral theories:

Story of neutralism and selectionism. (Bernardi 2007 PNAS, OA) Similar diagram and accompanying story can also be found in Ohta 2002 PNAS

You can also see Tomoko Ohta's big review here: Ohta 1992 Annu Rev Ecol Syst (free access).

The major breakthrough here is not even so much the Neutral Theory (which was more of a wake-up call to the stagnating ultra-selectionists), but the Nearly Neutral Theory. Accepting near-neutrality enables one to deal with truly messy and ambiguous situations that don't fit so neatly into the advantageous-deleterious dichotomy. Furthermore, it allows a full spectrum, encorporating the fact that some deleterious mutations are worse than others, and vice versa for the advantageous ones. The 'strict-ness' of selection is further affected by additional factors, such as effective population size.

In short, selection acts probabilistically, not absolutely:

The probability of selection-dependent fixation of an allele vs. product of effective population size(Ne) and selection coefficient(s) of the allele. Note that holding s constant and increasing Ne shifts the selection-dependent fixation probability away from 1 (neutral). Thus, selection is probabilistic; there is also a time dependency here: the longer you run a given situation, the greater the chance that even the slightest deviation from neutrality will be acted on by selection. Given either infinite time or infinite population size, we would see a sharp cut off between advantageous and deleterious alleles. Neutrality would disappear. However, given that no biological system persists for infinite time or has an infinite population size, what one gets is a zone of effectively neutral (Nearly Neutral) mutations; again, the width of this 'zone' is inversely proportional to Ne Disclaimer: I am not well-versed in popgen by any means, please correct me where I'm wrong! (Yi 2006 BioEssays)

The further a mutation deviates in either direction from the true neutral (here assumed to be the same as previous state of the allele, in the context of mutations), the more likely selection is to do something about it, wither selecting against the allele in question, or selecting against those who lack the allele in question (aka "positive selection"). Crudely put, the larger the effective population size, the steeper the selection curve (ie slightly deleterious now becomes quite deleterious, etc).

This actually means that according to pop size alone, selection is far stricter in bacteria than it is in vertebrates. This makes sense: bacteria exhibit a lot less 'design stupidity', if you will, than we do. Again, creating a multicellular organism with a ridiculously long and expensive generation span and a pathetically low reproduction rate is about the stupidest way to perpetrate a handful of genes. But it is tolerated -- in large part because there is a niche for it beyond the reach of more efficient organisms, and to some extent because the effective population size there is so small as to allow the system to drift towards foolish complexity.

Want concrete examples? Genome complexity is a really nice one; I won't discuss details here, but see Yi 2006, Lynch 2007, Stoltzfus 1999, and more Lynch if interested.

To make take an analogy from ecology, a similar argument can be made for the existence of commensalism. Yes, strictly speaking, if you measure all effects and interactions to the finest detail, there are no commensal relationships -- even the slighest extra drag produced by free-riding fish on the manta ray (provided they don't do anything beneficial to it, too lazy to research) would be harmful thereby rendering the relationship parasitic. However, just as in the case of selection, there lies a fuzzy line between parasitism and mutualism, in many cases fuzzy enough to contain 'nearly-parasitic' and 'nearly-commensal' interactions. In that case, the relationship would not be harmful or beneficial enough to really matter within a finite (and turbulent) timeframe. Thus, it is probably more useful to use 'commensal' (well, nearly-commensal) than have to always scratch your head over whether the net total of a relationship is mutualistic or parasitic.

Now that we are hopefully at least considering the possibility of neutral mutations, why should anyone care? Aren't pure selectionists just a strawman anyway? Besides, aren't neutral mutations incapable of really doing anything useful or noticeable? And what the hell is constructive neutral evolution anyway? Stay tuned for this and more in Part II!

References and further reading:
Bernardi, G. (2007). The neoselectionist theory of genome evolution Proceedings of the National Academy of Sciences, 104 (20), 8385-8390 DOI: 10.1073/pnas.0701652104

Gregory, T., & Ellis, C. (2009). Conceptions of Evolution among Science Graduate Students BioScience, 59 (9), 792-799 DOI: 10.1525/bio.2009.59.9.11

Lynch, M. (2007). Colloquium Papers: The frailty of adaptive hypotheses for the origins of organismal complexity Proceedings of the National Academy of Sciences, 104 (suppl_1), 8597-8604 DOI: 10.1073/pnas.0702207104

Lynch, M. (2007). The evolution of genetic networks by non-adaptive processes Nature Reviews Genetics, 8 (10), 803-813 DOI: 10.1038/nrg2192

Ohta, T. (1992). The Nearly Neutral Theory of Molecular Evolution Annual Review of Ecology and Systematics, 23 (1), 263-286 DOI: 10.1146/annurev.ecolsys.23.1.263

Ohta, T. (2002). Inaugural Article: Near-neutrality in evolution of genes and gene regulation Proceedings of the National Academy of Sciences, 99 (25), 16134-16137 DOI: 10.1073/pnas.252626899

Stoltzfus A (1999). On the possibility of constructive neutral evolution. Journal of molecular evolution, 49 (2), 169-81 PMID: 10441669

Yi, S. (2006). Non-adaptive evolution of genome complexity BioEssays, 28 (10), 979-982 DOI: 10.1002/bies.20478

MM17 Answer - Spironucleus: double cells with twisted nuclei

ResearchBlogging.orgReally need to take care of the long lineup of overdue Mystery Micrographs. And clean up a bit of this huge drafts pile that has accumulated lately. Because I'm lazy, let's do Spironucleus first, from MM17. It goes well with laziness as not very much is known about it, which means there isn't too much to write about it. Shit, now you know why I blog about obscure organisms like those various protists...my secret is out!

SEMs of diplomonad fish parasite Spironucleus vortens. cr - compound lateral ridge.lpr + rpr - left and right peripheral ridge, respectively. Note their rope-like form. pp - posterior papillum. Note flagellar pockets in (4). r - recurrent flagellum. 5 - an atypical specimen with transposed posterior structures. 6 - laterla view of posterior end. A fairly complicated flagellate! (Sterud & Poynton 2002 JEM)

To clarify the complicated morphology:

Drawings of the 'double-celled' Spironucleus vortens. The two recurrent flagella pass inside the cell and emerge at the posterior end. (Poynton et al. 1995 JEM)

Spironucleus may strike you as being particularly symmetrical. In fact, it very well is a 'double cell', containing two nuclei (slightly wrapping around each other helically, hence Spironucleus), and two sets of flagella. The path of the recurrent flagella makes sense when considering that the single cells of the group have three flagella pointing one way, and the fourth pointing another. These double cells are case of the two cells being 'stuck together' at the side of the recurrent flagellum. Here's a TEM to show the elongate nuclei and the flagella passing between them:

Top: longitudinal section at the anterior end of the flagellate. n - nuclei; k - kinetosomes. Bottom: cross-section of the anterior end. Note the recurrent flagella (r; circled in red) passing between the nuclei. (Poynton et al. 1995 JEM)

Here's another species of Spironucleus, S.berkhanaus, in arctic char blood:

Parasitic Spironucleus barkhanus in the blood of arctic char, as well as in isolation. Note that it's a different species from the one above, which may explain the lack of lateral ridges.(Sterud et al. 2003 Dis Aquatic Organisms)

Note how the two species seem a bit different from each other. This shows the morphological diversity in the group. In fact, Spironucleus seems to be a bit polyphyletic or paraphyletic at best (JΓΈrgensen & Sterud 2007 Protist; Kolisko et al. 2008 BMC Evol Biol).

Phylogeny of Spironucleus. This poor genus seem to be ruthlessly strewn all over Diplomonadida. Note position of S.vortens and S.berkhanus. (JΓΈrgensen & Sterud 2007 Protist)

Diplomonads have an interesting tale involving cell cycle defects and duplications of the nucleus and flagella, but I'll leave you in suspense for a while. That's a bigger topic, and I should probably introduce our cute friend Giardia first (cute friend in SEM, and horrible foe in the intestine...). Giardia is a independent case of cell 'doubling', and is organised quite differently. Further discussion of diplomonads should happen...eventually. Feel free to nag me about it if you're really interested!

References
JORGENSEN, A., & STERUD, E. (2007). Phylogeny of Spironucleus (Eopharyngia: Diplomonadida: Hexamitinae) Protist, 158 (2), 247-254 DOI: 10.1016/j.protis.2006.12.003

Kolisko, M., Cepicka, I., Hampl, V., Leigh, J., Roger, A., Kulda, J., Simpson, A., & Flegr, J. (2008). Molecular phylogeny of diplomonads and enteromonads based on SSU rRNA, alpha-tubulin and HSP90 genes: Implications for the evolutionary history of the double karyomastigont of diplomonads BMC Evolutionary Biology, 8 (1) DOI: 10.1186/1471-2148-8-205


POYNTON, S., FRASER, W., FRANCIS-FLOYD, R., RUTLEDGE, P., REED, P., & NERAD, T. (1995). Spironucleus vortens N. Sp. from the Freshwater Angelfish Pterophyllum scalare: Morphology and Culture The Journal of Eukaryotic Microbiology, 42 (6), 731-742 DOI: 10.1111/j.1550-7408.1995.tb01625.x

Sterud E, Poppe T, & BornΓΈ G (2003). Intracellular infection with Spironucleus barkhanus (Diplomonadida: Hexamitidae) in farmed Arctic char Salvelinus alpinus. Diseases of aquatic organisms, 56 (2), 155-61 PMID: 14598991

STERUD, E., & POYNTON, S. (2002). Spironucleus vortens (Diplomonadida) in the Ide, Leuciscus idus (L.) (Cyprinidae): a Warm Water Hexamitid Flagellate Found in Northern Europe The Journal of Eukaryotic Microbiology, 49 (2), 137-145 DOI: 10.1111/j.1550-7408.2002.tb00357.x

Sunday Protist -- Trichotokara nothriae: Guitar-shaped gregarine

ResearchBlogging.orgThis post turned into a bit of a hodgepodge of various gregarine-related trivia. Proceed with caution.

Gregarines are a group of apicomplexans (='Sporozoa', a vastly diverse group famous for the malarial parasite Plasmodium and the behaviour-altering Toxoplasma) characterised by a monoxenous (single host) lifestyle that is quite different from that of other 'apis'. Christopher Taylor wrote a nice post about them here.

Apicomplexa are alveolates along with ciliates and dinoflagellates; you can find them on the left side of this tree . The apicomplexan phylogeny is a complete mess at the moment; the old coccidian-haematozoan-gregarine divisions aren't too well-supported and the relationships of stuff within them are even murkier. As an aside, many apis have an 'apicoplast', or a relic plastid of red algal origin -- their ancestors were once photosynthetic! In fact, a paraphyletic group of organisms basal to apicomplexa (Chromera et al.) are currently photosynthetic, further supporting the photosynthetic ancestry of these weird mostly-intracellular parasites, most of whom rarely ever see the light of day!

Gregarines are typically invertebrate parasites and unlike other apicomplexans, tend to spend most of their lives extracellularly; in fact, their cellular penetration consists of attaching themselves to a cell via the mucron (holdfast-like structure). You can read more about their biology and life cycle on their ToLWeb page. (also a review in Tr Parasitol: Leander 2007) If you want to see some for yourself, kidnapping and slicing up an earthworm is an easy way to do so: Monocystis is a parasite of earthworm seminal vesicles (feeds on sperm), and a rather abundant one. It may actually be quite easy to find various apicomplexan parasites in insects -- it is estimated that most of them may have an api specialised in parasitising them, which hints at the total apicomplexan diversity being something outrageously vast! Such a project would also be a good excuse to learn insect anatomy, which I find to be quite complicated.

Right, you wanted to see a new genus of guitar-shaped gregarines:

Trichotokara from the intestine of an onuphid tubeworm. a-e: trophozoites (feeding forms). M - mucron ('holdfast'), CB - cell body. Arrow - junction between mucron and cell body, which can be seen extending further into the mucron in (e; arrowheads). f: gamonts in syzygy, or gregarine sex. Scalebars: a-e 10um; f 25um. (Rueckert & Leander 2010 J Invert Pathol)

By the way, if anyone asks you for a six-letter word in English 'devoid of any vowels', keep 'syzygy' in mind. Technically it does have vowels, as any phonologist would tell you, but most people insist on equating letters with sounds, and y 'is not a vowel'. Regardless, it's still a really awesome word. Syzygy!

More gregarine awesomeness. Note how the cell surface seems to strive for increased surface area, especially in the mucron which gets inserted into a cell:

SEM of Trichotokara. b - close-up of hair-like projections of the mucron. c - junction between mucron and cell body. d - folds along the cell body. Scalebars: a - 10um; b-d - 1um. (Rueckert & Leander 2010 J Invert Pathol)

This gives me an excuse to mention a paper on proximate vs. ultimate convergence by the senior author on the above gregarine paper: Leander 2008 JEM (free access). Among several other examples of ultimate convergence between multicellular and unicellular organisms inhabiting similar environments, gregarines and nematodes are compared in terms of their structural organisation. While nematodes have longitudinal muscles just beneath the elastic epidermis, gregarines have subpellicular bands of longitudinal microtubules running just underneath the elastic cortex (although used differently -- see gliding motility below). Curiously, in both cases the result is a sinusoidal (wiggling) pattern of movement. Additionally, tapeworm and Haplozoon (dinoflagellate) surface morphology are noted to be similar (covered with microvili), for the obvious purpose of increasing surface area. It's probably not much of a stretch to add gregarine surface structure to that list. (see Leander et al. 2003 J Parasitol for more gregarine surfaces)

Interesting case of structural ultimate convergence between nematodes and gregarines. Purple - bands of muscle and microtubules, respectively. Blue - elastic epidermis and tri-layered cortex, respectively. The three cortical layers consist of the plasma membrane at the very surface, with two alveolar membranes immediately below. (Leander 2008 JEM)

Before we proceed to a digression on apicomplexan motility, oblicatory phylogeny of Trichotokara and relatives. Note its extremely diverged SSU sequence resulting in a hellishly long branch:

ML tree of SSU rDNA sequences. Probably wouldn't trust its exact placement among the gregarines just yet... (Rueckert & Leander 2010 J Invert Pathol)

Apicomplexans are generally aflagellate in their trophic stage (I say 'generally' just in case...) -- their motility is an interesting topic, as they can't exactly extrude pseudopodia either. Nor do they have any spirochaetes doing the work for them as in Mixotricha, nor do they wildly thrash about an internal bundle of microtubules like Saccinobaculus. So how do they do it? Just like pennate diatoms: by gliding motility.

While sharing some basic similarities with diatom gliding, the apicomplexan variant has an unrelated origin and is quite different. One annoying thing (to us) about alveolates is their alveolae, or little membranous sacs just underneath the plasma membrane. In apicomplexan cell biology literature, this is called the Inner Membrane Complex. Prior to explaining why this detail is particularly annoying, first let's go over the crude basics of gliding motility: First, you need something to anchor to the substrate. This material is usually discarded, leaving behind a trail of 'slime', if you will. Then, you need an adaptor protein [complex] that attaches to the anchoring substance and crosses the plasma membrane. This adaptor must have a way of reaching a cytoskeletal element, usually actin via myosins (eg. see Molino & Wetherbee 2008 Biofouling; also, that journal title is very WTF...). The problem (again, mostly for researchers, and students...) with apicomplexa is their tendency to have the Inner Membrane Complex in the middle of that. This means the mechanism looks roughly like this:


Or, in the language of Nature Reviews:

Cell biology: Always more fun with extra gene/protein names thrown in, especially those irrelevant to the point. Shall we look up some protein structures while we're at it?
Ignore the target cell part -- a similar process happens along other surfaces too. If I recall, the model with intra-IMC proteins reaching across between actin and microtubule systems is actually more up-to-date; the "rolling IMC conveyor belt" model was outdated. Don't quote me on this though! (Baum et al. 2006 Nature Rev Microbiol)


Remember cramming the molecular biology of amoeboid motion? Isn't it almost a good thing that traditional cell biology courses are so phylogenetically impoverished? So many things are much more complex than animal cells, so we actually get the easy (and [arguably] boring) option. In a nutshell, you have something like this:
anchor-adhesin-actin-myosin-[interamembranous particles?]-subpellicular microtubules
The myosins move to the opposite of cell motility (and actin polymerisation), thereby pushing the pellicular microtubule skeleton in the right direction. Look at the Soldati & Meissner figure again to see why. It's a rather convoluted process just to get a cell moving! Of course, that complexity is more of a problem for cell biologists than the organism, considering how abundant and efficient apicomplexans tend to be.

Another aside: Apicomplexans, as well as numerous other organisms, are capable of a cell divison process known as palintomy: they can undergo several rounds of mitosis without cytokinesis, resulting in multinucleate cells (helps to not have open mitosis), and then simultaneously undergo cytokinesis for each of those nuclei (cellularisation). In gregarines, this looks vaguely like budding, as the nuclei tend to congregate near the cortex during this process (Kuriyama et al. 2005 Cell Motility Cytosk). Drosophila embryos do something similar, so palintomy isn't that unusual, but still pretty cool.

Back to gregarines, there are some more species that seem to be on a morphological acid trip. Some of them have been described only once and never noted again, which makes me sad:

Aikinetocystis singularis. I really want an SEM of that! Too bad it's from an obscure burmese earthworm... (Gates 1926 Biol Bulletin)

So if you like finding new species and genera and describing them, may I recommend apicomplexan diversity. It's taking a while for entrail-hungry parasitologists to go through all the various invertebrate (and vertebrate) parasites out there, so there's still plenty of room for work. If there is truly one species of apicomplexa for roughly each species of insects (and other animals), that pie chart of diversity showing most life as insects (and protists but a tiny splinter) is truly laughable:

LOL. Simply hilarious! Looks like the "global biodiversity assessment" team was a bit short on microbiologists... (at least they admit to not knowing much bacterial diversity; at least they put 'protozoa' and 'algae' in quotation marks...) (Purvis & Hector 2000 Nature)

All hail microbial parasites -- the bane of biodiversity research!

References
Baum, J., Papenfuss, A., Baum, B., Speed, T., & Cowman, A. (2006). Regulation of apicomplexan actin-based motility Nature Reviews Microbiology, 4 (8), 621-628 DOI: 10.1038/nrmicro1465

G. E. Gates (1926). Preliminary Note on a New Protozoan Parasite of Earthworms of the Genus EutyphΕ“us Biological Bulletin, 51 (6), 400-404

LEANDER, B. (2008). Marine gregarines: evolutionary prelude to the apicomplexan radiation? Trends in Parasitology, 24 (2), 60-67 DOI: 10.1016/j.pt.2007.11.005

LEANDER, B. (2008). A Hierarchical View of Convergent Evolution in Microbial Eukaryotes Journal of Eukaryotic Microbiology, 55 (2), 59-68 DOI: 10.1111/j.1550-7408.2008.00308.x

Molino, P., & Wetherbee, R. (2008). The biology of biofouling diatoms and their role in the development of microbial slimes Biofouling, 24 (5), 365-379 DOI: 10.1080/08927010802254583

Purvis, A., & Hector, A. (2000). Getting the measure of biodiversity Nature, 405 (6783), 212-219 DOI: 10.1038/35012221

Rueckert, S., & Leander, B. (2010). Description of Trichotokara nothriae n. gen. et sp. (Apicomplexa, Lecudinidae) – an intestinal gregarine of Nothria conchylega (Polychaeta, Onuphidae) Journal of Invertebrate Pathology DOI: 10.1016/j.jip.2010.03.005

Soldati, D., & Meissner, M. (2004). Toxoplasma as a novel system for motility Current Opinion in Cell Biology, 16 (1), 32-40 DOI: 10.1016/j.ceb.2003.11.013