DNA analysis reveals there are four distinct giraffe species, not one
researchgate.net
researchgate.net
<97% 16S rRNA gene sequence identity? You're a different species [0].
It's a little more complicated than that, and some important people (especially in the older generation) don't like it, but it's a good / quick standard.
The classic example of non-transitive species relationships from sexually reproducing organisms is a "ring species": https://en.wikipedia.org/wiki/Ring_species
Every biology major learns about the different species concepts/definitions [0] and why different subfields of biology might prioritize one over another.
The real outcome seems to be that the species is now 1/4 its previous size. Where there was once one endangered species, now stand four very endangered species.
Similar and more dramatic story with mantas: http://news.nationalgeographic.com/news/2008/07/080731-new-r...
W.F. Lloyd, 1833, "A Lecture on the Notion of Value as Distinguished Not Only from Utility, but also from Value in Exchange".
http://socserv2.socsci.mcmaster.ca/~econ/ugcm/3ll3/lloyd/val...
I had a sudden panicky vision of miniature quarter-size giraffes caused by improper zoo breeding before I figured out what you meant.
Well, ok, we documented some ring species. That had no effect on the biological species concept, though. It never satisfied the transitive property.
EDIT: To clarify, as some people thought this was a stupid question... Every time I scroll down to click one of the links the website scrolls my browser back up and loads a new article below the one I was reading. I don't want to read more articles, I want to click the links at the bottom of the website!!! I was not asking if the links work, they probably do, I am asking how do I "click them" if the website keeps moving the webview back up when I scroll to the bottom?
I was not asking if the links work, they probably do, I am asking how do I "click them" if the website keeps moving the webview back up when I scroll to the bottom?
As for infinite scrolling, I am definitely not a fan myself, and this is an example of why.
To go into a bit more detail: to do the inference task we would need at least three things:
1. A definition of "species"
2. The probability distribution of DNA sequences under the null hypothesis
3. (For Bayesian approaches) The probability distribution of DNA sequences under the alternate hypotheses
(1) Is a huge problem because many biologists don't think it's necessary to worry about the definition. Putting that aside temporarily:
(2). If Giraffes are a single species, what is the probability distribution from which our observed DNA sequences were sampled? The answer is that it depends critically on all sorts of other things: social and reproductive biology of giraffes, giraffe demographics, giraffe post-natal dispersal patterns. Maybe the most important is that it depends on the geographic distribution of savanna vegetation types over the past few million years in sub-saharan Africa. We do not know the effects of any of these on the relevant probability distributions. The field of population genetics does allow us to define probability distributions over sampled DNA sequences, but you have to specify the model. And all the above-listed unknowns and more are relevant to the model. From a formal statistical point of view you could place priors on these unknown things and simulate from the marginal distribution of interest, but in practice that is of course fantasy: there's no convincing way to choose priors for such things, and there's no way to test it because giraffe evolution happened once only.
(3). See (2).
The upshot of all this is that while making evolutionary inferences from DNA sequences is a fascinating discipline, it has some serious challenges and limitations: we need to recognize that it is not in as happy a place as other sorts of statistical inferences for which arguments can be made about the relevant probability distributions needed to make the inference. There is a huge disconnect between the statistical and theoretical machinery used in the field, and the ability of practitioners to understand that material. This is absolutely fair enough: people publishing papers on a particular species are likely to be ecologists and conservation biologists; but to understand coalescent theory and the statistical inference techniques used requires graduate-level understanding of stochastic processes, statistical inference theory, computational statistics and other stuff from discrete math etc. But that's not to imply that it would all be fine if people publishing the papers were professional computational statisticians. The real problem is that while we wish that we had the ability to make, and more importantly test, these inferences, the truth is that it's a wildly ambitious inference problem. Throwing fancy math and computational statistics algorithms at it will get some people tenure, and will make graduate students in organismal biology feel intimidated, but it doesn't change that problem.