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在肉食性海绵 Asbestopluma hypogea(多孔动物门:寻常海绵纲)的捕食和消化过程中细胞的死亡与更新。

Cell death and renewal during prey capture and digestion in the carnivorous sponge Asbestopluma hypogea (Porifera: Poecilosclerida).

机构信息

Université Montpellier 2, Place Eugène Bataillon, 34095 Montpellier Cedex 5, France.

出版信息

J Exp Biol. 2012 Nov 15;215(Pt 22):3937-43. doi: 10.1242/jeb.072371. Epub 2012 Aug 16.

Abstract

The sponge Asbestopluma hypogea is unusual among sponges due to its peculiar carnivorous feeding habit. During various stages of its nutrition cycle, the sponge is subjected to spectacular morphological modifications. Starved animals are characterized by many elongated filaments, which are crucial for the capture of prey. After capture, and during the digestion process, these filaments actively regress before being regenerated during a subsequent period of starvation. Here, we demonstrate that these morphological events rely on a highly dynamic cellular turnover, implying a coordinated sequence of programmed cell death (apoptosis and autophagy), cell proliferation and cell migration. A candidate niche for cell renewal by stem cell proliferation and differentiation was identified at the base of the sponge peduncle, characterized by higher levels of BrdU/EdU incorporation. Therefore, BrdU/EdU-positive cells of the peduncle base are candidate motile cells responsible for the regeneration of the prey-capturing main sponge body, i.e. the dynamic filaments. Altogether, our results demonstrate that dynamics of cell renewal in sponge appear to be regulated by cellular mechanisms as multiple and complex as those already identified in bilaterian metazoans.

摘要

由于其特殊的肉食性摄食习性,地下海绵 Asbestopluma hypogea 在海绵中较为独特。在其营养周期的各个阶段,海绵都会经历壮观的形态变化。饥饿的动物具有许多细长的丝状体,这对于捕捉猎物至关重要。在捕获猎物后和消化过程中,这些丝状体在随后的饥饿期之前会积极退化,然后再生。在这里,我们证明这些形态变化依赖于高度动态的细胞更新,这意味着程序性细胞死亡(细胞凋亡和自噬)、细胞增殖和细胞迁移的协调序列。在海绵柄的基部,通过干细胞增殖和分化来进行细胞更新的候选龛位被确定,其 BrdU/EdU 掺入水平更高。因此,柄基部的 BrdU/EdU 阳性细胞是负责再生主要海绵体(即动态丝状体)的游动细胞的候选细胞。总之,我们的结果表明,海绵细胞更新的动态似乎受到细胞机制的调节,这些机制与已经在两侧后生动物中确定的机制一样多样和复杂。

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