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The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation

Ciliates, such as Tetrahymena thermophila, evolved complex mechanisms to determine both the location and dimensions of cortical organelles such as the oral apparatus (OA: involved in phagocytosis), cytoproct (Cyp: for eliminating wastes), and contractile vacuole pores (CVPs: involved in water expuls...

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Autores principales: Cole, Eric S., Maier, Wolfgang, Joachimiak, Ewa, Jiang, Yu-yang, Lee, Chinkyu, Collet, Erik, Chmelik, Carl, Romero, Daniel P., Chalker, Douglas, Alli, Nurudeen K., Ruedlin, Tina M., Ozzello, Courtney, Gaertig, Jacek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10398878/
https://www.ncbi.nlm.nih.gov/pubmed/37163326
http://dx.doi.org/10.1091/mbc.E22-11-0501
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author Cole, Eric S.
Maier, Wolfgang
Joachimiak, Ewa
Jiang, Yu-yang
Lee, Chinkyu
Collet, Erik
Chmelik, Carl
Romero, Daniel P.
Chalker, Douglas
Alli, Nurudeen K.
Ruedlin, Tina M.
Ozzello, Courtney
Gaertig, Jacek
author_facet Cole, Eric S.
Maier, Wolfgang
Joachimiak, Ewa
Jiang, Yu-yang
Lee, Chinkyu
Collet, Erik
Chmelik, Carl
Romero, Daniel P.
Chalker, Douglas
Alli, Nurudeen K.
Ruedlin, Tina M.
Ozzello, Courtney
Gaertig, Jacek
author_sort Cole, Eric S.
collection PubMed
description Ciliates, such as Tetrahymena thermophila, evolved complex mechanisms to determine both the location and dimensions of cortical organelles such as the oral apparatus (OA: involved in phagocytosis), cytoproct (Cyp: for eliminating wastes), and contractile vacuole pores (CVPs: involved in water expulsion). Mutations have been recovered in Tetrahymena that affect both the localization of such organelles along anterior–posterior and circumferential body axes and their dimensions. Here we describe BCD1, a ciliate pattern gene that encodes a conserved Beige-BEACH domain–containing protein a with possible protein kinase A (PKA)-anchoring activity. Similar proteins have been implicated in endosome trafficking and are linked to human Chediak–Higashi syndrome and autism. Mutations in the BCD1 gene broaden cortical organelle domains as they assemble during predivision development. The Bcd1 protein localizes to membrane pockets at the base of every cilium that are active in endocytosis. PKA activity has been shown to promote endocytosis in other organisms, so we blocked clathrin-mediated endocytosis (using “dynasore”) and inhibited PKA (using H89). In both cases, treatment produced partial phenocopies of the bcd1 pattern mutant. This study supports a model in which the dimensions of diverse cortical organelle assembly-platforms may be determined by regulated balance between constitutive exocytic delivery and PKA-regulated endocytic retrieval of organelle materials and determinants.
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spelling pubmed-103988782023-09-16 The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation Cole, Eric S. Maier, Wolfgang Joachimiak, Ewa Jiang, Yu-yang Lee, Chinkyu Collet, Erik Chmelik, Carl Romero, Daniel P. Chalker, Douglas Alli, Nurudeen K. Ruedlin, Tina M. Ozzello, Courtney Gaertig, Jacek Mol Biol Cell Articles Ciliates, such as Tetrahymena thermophila, evolved complex mechanisms to determine both the location and dimensions of cortical organelles such as the oral apparatus (OA: involved in phagocytosis), cytoproct (Cyp: for eliminating wastes), and contractile vacuole pores (CVPs: involved in water expulsion). Mutations have been recovered in Tetrahymena that affect both the localization of such organelles along anterior–posterior and circumferential body axes and their dimensions. Here we describe BCD1, a ciliate pattern gene that encodes a conserved Beige-BEACH domain–containing protein a with possible protein kinase A (PKA)-anchoring activity. Similar proteins have been implicated in endosome trafficking and are linked to human Chediak–Higashi syndrome and autism. Mutations in the BCD1 gene broaden cortical organelle domains as they assemble during predivision development. The Bcd1 protein localizes to membrane pockets at the base of every cilium that are active in endocytosis. PKA activity has been shown to promote endocytosis in other organisms, so we blocked clathrin-mediated endocytosis (using “dynasore”) and inhibited PKA (using H89). In both cases, treatment produced partial phenocopies of the bcd1 pattern mutant. This study supports a model in which the dimensions of diverse cortical organelle assembly-platforms may be determined by regulated balance between constitutive exocytic delivery and PKA-regulated endocytic retrieval of organelle materials and determinants. The American Society for Cell Biology 2023-07-01 /pmc/articles/PMC10398878/ /pubmed/37163326 http://dx.doi.org/10.1091/mbc.E22-11-0501 Text en © 2023 Cole et al. “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society for Cell Biology. https://creativecommons.org/licenses/by-nc-sa/4.0/This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial-Share Alike 4.0 International Creative Commons License.
spellingShingle Articles
Cole, Eric S.
Maier, Wolfgang
Joachimiak, Ewa
Jiang, Yu-yang
Lee, Chinkyu
Collet, Erik
Chmelik, Carl
Romero, Daniel P.
Chalker, Douglas
Alli, Nurudeen K.
Ruedlin, Tina M.
Ozzello, Courtney
Gaertig, Jacek
The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation
title The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation
title_full The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation
title_fullStr The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation
title_full_unstemmed The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation
title_short The Tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation
title_sort tetrahymena bcd1 mutant implicates endosome trafficking in ciliate, cortical pattern formation
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10398878/
https://www.ncbi.nlm.nih.gov/pubmed/37163326
http://dx.doi.org/10.1091/mbc.E22-11-0501
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