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本文引用的文献

1
A hydrodynamics approach to the evolution of multicellularity: flagellar motility and germ-soma differentiation in volvocalean green algae.一种关于多细胞性进化的流体动力学方法:团藻目绿藻中的鞭毛运动和生殖-体细胞分化
Am Nat. 2006 Apr;167(4):537-54. doi: 10.1086/501031. Epub 2006 Feb 14.
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Multicellularity and the functional interdependence of motility and molecular transport.多细胞性以及运动性与分子运输之间的功能相互依存关系。
Proc Natl Acad Sci U S A. 2006 Jan 31;103(5):1353-8. doi: 10.1073/pnas.0503810103. Epub 2006 Jan 18.
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The unicellular ancestry of animal development.动物发育的单细胞祖先。
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Sex as a response to oxidative stress: a twofold increase in cellular reactive oxygen species activates sex genes.作为对氧化应激反应的性别差异:细胞活性氧的两倍增加会激活性别基因。
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Small talk. Cell-to-cell communication in bacteria.闲聊。细菌中的细胞间通讯。
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Phylogenetic analysis of "Volvocacae" for comparative genetic studies.用于比较遗传学研究的团藻科系统发育分析。
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多细胞生物鞭毛驱动的流动增强了远距离分子运输。

Flows driven by flagella of multicellular organisms enhance long-range molecular transport.

作者信息

Short Martin B, Solari Cristian A, Ganguly Sujoy, Powers Thomas R, Kessler John O, Goldstein Raymond E

机构信息

Department of Physics, Program in Applied Mathematics, University of Arizona, Tucson, AZ 85721, USA.

出版信息

Proc Natl Acad Sci U S A. 2006 May 30;103(22):8315-9. doi: 10.1073/pnas.0600566103. Epub 2006 May 17.

DOI:10.1073/pnas.0600566103
PMID:16707579
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1482491/
Abstract

Evolution from unicellular organisms to larger multicellular ones requires matching their needs to the rate of exchange of molecular nutrients with the environment. This logistic problem poses a severe constraint on development. For organisms whose body plan is a spherical shell, such as the volvocine green algae, the current (molecules per second) of needed nutrients grows quadratically with radius, whereas the rate at which diffusion alone exchanges molecules grows linearly, leading to a bottleneck radius beyond which the diffusive current cannot meet metabolic demands. By using Volvox carteri, we examine the role that advection of fluid by the coordinated beating of surface-mounted flagella plays in enhancing nutrient uptake and show that it generates a boundary layer of concentration of the diffusing solute. That concentration gradient produces an exchange rate that is quadratic in the radius, as required, thus circumventing the bottleneck and facilitating evolutionary transitions to multicellularity and germ-soma differentiation in the volvocalean green algae.

摘要

从单细胞生物进化到更大的多细胞生物需要使它们的需求与分子营养物质与环境的交换速率相匹配。这个逻辑问题对发育构成了严重限制。对于身体结构为球形外壳的生物,如团藻目绿藻,所需营养物质的流量(每秒分子数)随半径呈二次方增长,而仅靠扩散交换分子的速率呈线性增长,导致出现一个瓶颈半径,超过这个半径,扩散流量就无法满足代谢需求。通过使用卡特氏团藻,我们研究了表面附着的鞭毛协同摆动产生的流体平流在增强营养物质吸收中所起的作用,并表明它会产生扩散溶质的浓度边界层。该浓度梯度产生了所需的随半径呈二次方的交换速率,从而避开了瓶颈,促进了团藻目绿藻向多细胞性和生殖 - 体细胞分化的进化转变。