Affiliation:
1. Department of Integrative Biosciences, Oregon Health and Science University, Portland, OR 97239-3097, USA.
Abstract
Vertebrate embryos define an anatomic plane of bilateral symmetry by establishing rudimentary anteroposterior and dorsoventral (DV) axes. A left-right (LR) axis also emerges, presaging eventual morphological asymmetries of the heart and other viscera. In the radially symmetric egg of Xenopus laevis, the earliest steps in DV axis determination are driven by microtubule-dependent localization of maternal components toward the prospective dorsal side. LR axis determination is linked in time to this DV-determining process, but the earliest steps are unclear. Significantly, no cytoskeletal polarization has been identified in early embryos capable of lateral displacement of maternal components. Cleaving Xenopus embryos and parthenogenetically activated eggs treated with 2,3-butanedione monoxime(BDM) undergo a dramatic large-scale torsion, with the cortex of the animal hemisphere shearing in an exclusively counterclockwise direction past the vegetal cortex. Long actin fibers develop in a shear zone paralleling the equator. Drug experiments indicate that the actin is not organized by microtubules, and depends on the reorganization of preexisting f-actin fibers rather than new actin polymerization. The invariant chirality of this drug response suggests a maternally inherited, microfilament-dependent organization within the egg cortex that could play an early role in LR axis determination during the first cell cycle. Consistent with this hypothesis, brief disruption of cortical actin during the first cell cycle randomizes the LR orientation of tadpole heart and gut.
Publisher
The Company of Biologists
Subject
Developmental Biology,Molecular Biology
Reference43 articles.
1. Adams, D. S., Robinson, K. R., Fukumoto, T., Yuan, S.,Albertson, R. C., Yelick, P., Kuo, L., McSweeney, M. and Levin, M.(2006). Early, H+-V-ATPase-dependent proton flux is necessary for consistent left-right patterning of nonmammalian vertebrates. Development133,1657-1671.
2. Benink, H. A., Mandato, C. A. and Bement, W. M.(2000). Analysis of cortical flow models in vivo. Mol. Biol. Cell11,2553-2563.
3. Bunney, T. D., De Boer, A. H. and Levin, M.(2003). Fusicoccin signaling reveals 14-3-3 protein function as a novel step in left-right patterning during amphibian embryogenesis. Development130,4847-4858.
4. Canman, J. C. and Bement, W. M. (1997). Microtubules suppress actomyosinbased cortical flow in Xenopus oocytes. J. Cell Sci.110,1907-1917.
5. Cramer, L. P. and Mitchison, T. J. (1995). Myosin is involved in postmitotic cell spreading. J. Cell Biol.131,179-189.
Cited by
89 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献