Blum Nicola, Begemann Gerrit
Developmental Biology, University of Bayreuth, Bayreuth 95440, Germany RTG1331, Department of Biology, University of Konstanz, Konstanz 78457, Germany.
Developmental Biology, University of Bayreuth, Bayreuth 95440, Germany
Development. 2015 Sep 1;142(17):2888-93. doi: 10.1242/dev.120212. Epub 2015 Aug 7.
The zebrafish caudal fin consists of repeated units of bony rays separated by soft interray tissue, an organization that must be faithfully re-established during fin regeneration. How and why regenerating rays respect ray-interray boundaries, thus extending only the existing bone, has remained unresolved. Here, we demonstrate that a retinoic acid (RA)-degrading niche is established by Cyp26a1 in the proximal basal epidermal layer that orchestrates ray-interray organization by spatially restricting osteoblasts. Disruption of this niche causes preosteoblasts to ignore ray-interray boundaries and to invade neighboring interrays where they form ectopic bone. Concomitantly, non-osteoblastic blastema cells and regenerating blood vessels spread into the interrays, resulting in overall disruption of ray-interray organization and irreversible inhibition of fin regeneration. The cyp26a1-expressing niche plays another important role during subsequent regenerative outgrowth, where it facilitates the Shha-promoted proliferation of osteoblasts. Finally, we show that the previously observed distal shift of ray bifurcations in regenerating fins upon RA treatment or amputation close to the bifurcation can be explained by inappropriate preosteoblast alignment and does not necessarily require putative changes in proximodistal information. Our findings uncover a mechanism regulating preosteoblast alignment and maintenance of ray-interray boundaries during fin regeneration.
斑马鱼的尾鳍由被柔软的鳍条间组织分隔的重复骨射线单元组成,这种组织在鳍再生过程中必须被忠实地重新建立。再生的射线如何以及为何遵循射线-鳍条间边界,从而仅延伸现有的骨骼,这一问题仍未得到解决。在这里,我们证明视黄酸(RA)降解微环境由近端基底表皮层中的Cyp26a1建立,该微环境通过在空间上限制成骨细胞来协调射线-鳍条间组织。破坏这个微环境会导致前成骨细胞忽略射线-鳍条间边界并侵入相邻的鳍条间区域,在那里它们形成异位骨。与此同时,非成骨的芽基细胞和再生血管扩散到鳍条间区域,导致射线-鳍条间组织的整体破坏和鳍再生的不可逆抑制。表达Cyp26a1的微环境在随后的再生生长过程中还发挥着另一个重要作用,即促进Shha介导的成骨细胞增殖。最后,我们表明,先前观察到的在RA处理或靠近分叉处截肢后再生鳍中射线分叉的远端移位,可以通过不适当的前成骨细胞排列来解释,并不一定需要近端-远端信息的假定变化。我们的研究结果揭示了一种在鳍再生过程中调节前成骨细胞排列和维持射线-鳍条间边界的机制。