» Articles » PMID: 36542488

Role of Intraflagellar Transport in Transcriptional Control During Flagellar Regeneration in

Overview
Journal Mol Biol Cell
Date 2022 Dec 21
PMID 36542488
Authors
Affiliations
Soon will be listed here.
Abstract

Biosynthesis of organelle precursors is a central part of the organelle size control problem, but what systems are required to control precursor production? Genes encoding flagellar proteins are up-regulated during flagellar regeneration in , and this up-regulation is critical for flagella to reach their final length, but it not known how the cell triggers these genes during regeneration. We present two models based on transcriptional repressor that is produced either in the flagellum or in the cell body and sequestered in the growing flagellum. Both models lead to stable flagellar length control and can reproduce the observed dynamics of gene expression. The two models make opposite predictions regarding the effect of mutations that block intraflagellar transport (IFT). Using quantitative measurements of gene expression, we show that gene expression during flagellar regeneration is greatly reduced in mutations of the heterotrimeric kinesin-2 that drives IFT. This result is consistent with the predictions of the model in which a repressor is sequestered in the flagellum by IFT. Inhibiting axonemal assembly has a much smaller effect on gene expression. The repressor sequestration model allows precursor production to occur when flagella are growing rapidly, representing a form of derivative control.

Citing Articles

as a model system to study cilia and flagella using genetics, biochemistry, and microscopy.

Marshall W Front Cell Dev Biol. 2024; 12:1412641.

PMID: 38872931 PMC: 11169674. DOI: 10.3389/fcell.2024.1412641.


Physical Forces in Regeneration of Cells and Tissues.

Tang S, Marshall W Cold Spring Harb Perspect Biol. 2024; .

PMID: 38806241 PMC: 11602525. DOI: 10.1101/cshperspect.a041527.


The flagellar length control system: exploring the physical biology of organelle size.

Marshall W Phys Biol. 2023; 20(2).

PMID: 36623317 PMC: 9877179. DOI: 10.1088/1478-3975/acb18d.

References
1.
Albee A, Kwan A, Lin H, Granas D, Stormo G, Dutcher S . Identification of cilia genes that affect cell-cycle progression using whole-genome transcriptome analysis in Chlamydomonas reinhardtti. G3 (Bethesda). 2013; 3(6):979-91. PMC: 3689809. DOI: 10.1534/g3.113.006338. View

2.
Rosenbaum J, Witman G . Intraflagellar transport. Nat Rev Mol Cell Biol. 2002; 3(11):813-25. DOI: 10.1038/nrm952. View

3.
Weeks D, Collis P, Gealt M . Control of induction of tubulin synthesis in Chlamydomonas reinhardi. Nature. 1977; 268(5621):667-8. DOI: 10.1038/268667a0. View

4.
Matsuura K, Lefebvre P, Kamiya R, Hirono M . Bld10p, a novel protein essential for basal body assembly in Chlamydomonas: localization to the cartwheel, the first ninefold symmetrical structure appearing during assembly. J Cell Biol. 2004; 165(5):663-71. PMC: 2172387. DOI: 10.1083/jcb.200402022. View

5.
Hoober J . The Chlamydomonas Sourcebook. A Comprehensive Guide to Biology and Laboratory Use. Elizabeth H. Harris. Academic Press, San Diego, CA, 1989. xiv, 780 pp., illus. $145. Science. 1989; 246(4936):1503-4. DOI: 10.1126/science.246.4936.1503-a. View