The back of a tiger could have been a blank canvas. Instead, nature painted the big cat with parallel stripes, evenly spaced and
perpendicular1 to the
spine2. Scientists don't know exactly how stripes develop, but since the 1950s,
mathematicians3 have been modeling possible
scenarios4. In Cell Systems on December 23, Harvard researchers assemble a range of these models into a single equation to identify what variables control stripe formation in living things. "We wanted a very simple model in hopes that it would be big picture enough to include all of these different explanations," says lead author Tom Hiscock, a PhD student in Sean Megason's systems biology lab at Harvard Medical School. "We now get to ask what is common among
molecular5,
cellular6, and mechanical hypotheses for how living things orient the directions of stripes, which can then tell you what kinds of experiments will (or won't) distinguish between them."
Stripes are surprisingly simple to model mathematically (and much of the early work on the subject was by Alan Turing of "The Imitation Game" fame). These patterns emerge when interacting substances create waves of high and low concentrations of, for example, a
pigment7, chemical, or type of cell. What Turing's model doesn't explain is how stripes orient themselves in one particular direction.
Hiscock's
investigation8 focused on orientation--e.g., why tiger stripes are perpendicular to its body while zebrafish stripes are horizontal. One surprise from his integrated model is that it takes only a small change to the model to switch whether the stripes are
vertical9 or horizontal. What we don't know is how this translates to living things--so, for a tiger, what is the variable that pushes the development of perpendicular stripes?
"We can describe what happens in stripe formation using this simple mathematical equation, but I don't think we know the nitty-gritty details of exactly what
molecules10 or cells are mapping the formation of stripes," Hiscock says.
Genetic11 mutants exist that can't form stripes or make spots instead, such as in zebrafish, but "the problem is you have a big network of interactions, and so any number of
parameters12 can change the pattern," he adds.