Archaea: The 'Dark Matter' of the Microbial World
theatlantic.com
theatlantic.com
Nick Lane's book The Vital Questions has been highly recommended by the HN commentariat, and I think it more or less deserves its esteem. Lane gives an extensive theoretical analysis of the sequence of events wherein a eubacterium was engulfed by an archea, and the resulting endosymbiosis that was the beginning of complex (eukaryotic) life.
Apparently, the genomic evidence is strong that the original host was an archaeon an the original invader (later to become mitochondria) was a eubacterium. However, I don't think he discusses the origin of this divergence of eubacteria and archea, and why it persists so cleanly.
Obviously I know nothing about biology, but I'd love a high level explanation. It's the one thing that's always bothered me about evolution, because nobody ever explains it, and it seems like magic.
Another interesting example is I think seagulls along the arctic circle that are split in many species spread along an east-west axis. Most species can interbreed with their immediate neighbour, but not the neighbour of their neighbour (except at one point where the extreme populations meet and the immediate neighbours are not compatible either).
This reminds me of the Riemann surface associated with the complex logarithm:
https://en.wikipedia.org/wiki/Complex_logarithm#The_associat...
Chimps for whatever reason were able to satisfy their biological imperatives within their given environment early on and have never needed to change. The human line, not so much.
I guess the way I see it is that some mutation in early humans (perhaps selected for by the environment) created a priority on brain development. I'm sure there were many dead-end branches along the way to us that we haven't noticed. We just look back and see a straight line from chimps to humans. Perspective is key here.
Of course, I could be completely wrong :)
https://www.quora.com/If-evolution-is-true-then-why-are-ther... has some better ones.
In terms of speciation (chimpanzees or their ancestors giving rise to humans) this usually occurs due to an event such as a seperation between groups of the same species. They are then subject to differing external pressures as they may live in isolation, and their genetics continue to diverge until they are so far apart that they can no longer procreate and have become a species.
At some point there was a common ancestor of both species. Its offsprings diverged into two species that continued evolving into the current humans and chimpanzees.
I don't know anything about the phylogenetic tree of humans and our cousins, but I assume that at some point there was a spectrum (e.g., Neanderthals), but at some point the others got wiped out, without humans splitting any further. Perhaps this is due to the global mobility of humans? What do biologists think?
The reason speciation arises is complex, but its often due to different subgroups of a species exploiting different niches, and thus experiencing differing fitness pulls that eventually give rise to new species.
There are no "intermediate" species because they fit more poorly into either niche occupied by the two other species, and thus are out competed or dont arise in the first place.
From our common ancestor, there is a lot of continuum of hominids in the fossil record however. At some point humans and neanderthals did coexist as a spectrum of hominids coexisting at the same time, and we did "feed back" the most-fit DNA by interbreeding with them until we bred them out of existence.
Its actually very unusual in the car world, and I guess in evolution in general, for something like the SUV crossover to evolve where its basically SUV appearance on a car chassis, more or less. I think the closest biological analogy to a crossover SUV is a platypus. Although SUVs aren't nearly as cool as a platypus.
In many cases there are. The Burke Museum in Seattle currently has a display about the Pacific Northwest. In one part, they have a row of birds arranged based on where they were found on the Cascade Mountains. You can see them smoothly blend from one kind of coloration to another.
In cases where there are more distinct species, it's because the groups of animals don't interbreed for any of many reasons and then have drifted apart from each other.
https://en.wikipedia.org/wiki/Competitive_exclusion_principl...
Take a human woman. She holds hands with her mother. Her mother holds hands with her mother, and so on.
Take a female chimpanzee. She holds hands with her mother. Her mother holds hands with her mother, and so on.
Eventually, these two chains meet the same organism, the last common ancestor of human and chimpanzee, who lived somewhere around 6 million years ago. This (now singular) chain has somewhere around 600,000 individual organisms, where each pair next to each other holding hands are related as mother-daughter (so how could you argue they're different species?), but the endpoints of the chain are modern human and modern chimpanzee.
As a side note, categorizing life via the idea of species seemed like a good idea when it was developed, but we now know it's not. There's other (real life) examples that show that the idea of species is just a human invention that humans try to fit onto a reality that's more complicated and doesn't respect human abstractions.
In other words, while both families use DNA to store information and RNA to translate it, all the rest of the machinery used by cells in that process is different. This is why there are no intermediates. Likely (and this is a guess, if an educated one) this split happened before cells were even "cells". That is, whatever the pre-cellular replicons were that eventually led to life, there might have been many variations on (what eventually became) the ribosome, but two won out and gave rise to two distinct lineages of cellular life.
The rest, as they say, is history...
This opposed to the idea that the archaea existed, then the bridge (which went extinct), then archaea.
I should start by saying that we don't know, for sure, that pre-cellular replicons don't still exist. They may, and we may just not have figured out the right place to look for them.
That said, gaining a membrane is a huge advantage for life. The current working hypothesis is that life started as a series of autocatalytic chemical reactions, but for this to work there must have been just the right combination of chemicals in just the right conditions all at the same time. You can imagine that it wouldn't take much of a stray current to wash all that away, and you're back to square one. By surrounding themselves with a membrane, pre-cellular replicons could begin controlling their chemical environment, enriching it with the raw materials needed and regulating the conditions.
Again, though, just because cellular life would be expected to be more robust and, therefore, more successful than acellular replicons, you wouldn't expect those acellular reactions to immediately halt once cellular life arose.
If I had to guess, I'd say that acellular replicons may have persisted for quite some time, but ultimately succumbed to the Great Oxygenation Event (https://en.wikipedia.org/wiki/Great_Oxygenation_Event). Shortly after cellular life arose (or possibly beginning a bit before cells came on the scene), life cause a massive shift in the Earth's chemistry, freeing vast quantities of oxygen and changing what had been a reducing environment to one that is, on the balance, oxygenating.
Oxygen is, to put it bluntly, nasty stuff. It tends to break down complex molecules very readily, and so any acellular replicons that may have survived up to the Great Oxygenation Event were likely wiped out soon after.
A lower bar is just that the author correctly represent the evidence and arguments about the scientific issues, especially with regard to identifying the consensus position and representing it fairly. If Lane fails to do that, it's a more serious charge.
And it reaffirms my belief that humans (and all the other species, but I'm biased) are vastly weirder assemblages than it seems.