Gilbert Michelle C, Tetrault Emily, Packard Mary, Navon Dina, Albertson R Craig
Graduate Program in Organismic and Evolutionary Biology, University of Massachusetts, Amherst, MA, USA.
Graduate Program in Molecular and Cellular Biology, University of Massachusetts, Amherst, MA, USA.
Mol Biol Evol. 2021 Jul 29;38(8):3078-3092. doi: 10.1093/molbev/msab071.
Cichlid fishes exhibit rapid, extensive, and replicative adaptive radiation in feeding morphology. Plasticity of the cichlid jaw has also been well documented, and this combination of iterative evolution and developmental plasticity has led to the proposition that the cichlid feeding apparatus represents a morphological "flexible stem." Under this scenario, the fixation of environmentally sensitive genetic variation drives evolutionary divergence along a phenotypic axis established by the initial plastic response. Thus, if plasticity is predictable then so too should be the evolutionary response. We set out to explore these ideas at the molecular level by identifying genes that underlie both the evolution and plasticity of the cichlid jaw. As a first step, we fine-mapped an environment-specific quantitative trait loci for lower jaw shape in cichlids, and identified a nonsynonymous mutation in the ciliary rootlet coiled-coil 2 (crocc2), which encodes a major structural component of the primary cilium. Given that primary cilia play key roles in skeletal mechanosensing, we reasoned that this gene may confer its effects by regulating the sensitivity of bone to respond to mechanical input. Using both cichlids and zebrafish, we confirmed this prediction through a series of experiments targeting multiple levels of biological organization. Taken together, our results implicate crocc2 as a novel mediator of bone formation, plasticity, and evolution.
丽鱼科鱼类在摄食形态上表现出快速、广泛且可重复的适应性辐射。丽鱼科鱼类颌骨的可塑性也有充分记录,这种迭代进化和发育可塑性的结合导致了这样一种观点,即丽鱼科鱼类的摄食器官代表了一种形态学上的“灵活主干”。在这种情况下,环境敏感遗传变异的固定沿着由初始可塑性反应建立的表型轴驱动进化分歧。因此,如果可塑性是可预测的,那么进化反应也应该是可预测的。我们着手在分子水平上探索这些观点,方法是鉴定丽鱼科鱼类颌骨进化和可塑性的基础基因。作为第一步,我们精细定位了丽鱼科鱼类下颌形状的环境特异性数量性状位点,并在纤毛小根卷曲螺旋2(crocc2)中鉴定出一个非同义突变,该基因编码初级纤毛的主要结构成分。鉴于初级纤毛在骨骼机械传感中起关键作用,我们推断该基因可能通过调节骨骼对机械输入反应的敏感性来发挥其作用。利用丽鱼科鱼类和斑马鱼,我们通过一系列针对多个生物组织水平的实验证实了这一预测。综合来看,我们的结果表明crocc2是骨形成、可塑性和进化的一种新型调节因子。