Tubulin Acetylation Deficiency Promotes Axonemal Turnover and Increases Cytoplasmic Microtubules.

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2026-04

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Tubulin post-translational modifications regulate microtubule dynamics. Although α-tubulin acetylation has been linked to microtubule stability, how this modification affects the overall organization of cellular microtubules remains obscure. Here, we generated a Chlamydomonas mutant lacking the acetyltransferase αTAT1, which completely abolished α-tubulin K40 acetylation. Surprisingly, the steady-state lengths of normally acetylated structures, axonemes and rootlets, were largely unaffected. αTAT1 was found to localize to the ciliary tip, where it may stabilize the distal axoneme. Consistent with this, loss of acetylation caused an increase in axonemal tubulin turnover, as revealed by dikaryon-fusion assays. Unexpectedly, the atat1-1 mutant displayed an increased number of dynamic cortical microtubules and could regenerate long cilia after amputation, even when protein synthesis was inhibited. Notably, this increase in cortical microtubules required the presence of cilia, as the atat1-1 mutant carrying the ift46-1 mutation, which abolishes ciliogenesis, exhibited normal cortical microtubule levels. Despite these dramatic cytoskeletal changes, cell growth and division remained essentially normal. These findings suggest that acetylation modulates microtubule behavior by regulating axonemal tubulin turnover and cytoplasmic microtubule dynamics, while cellular morphology is buffered against variations in microtubule content. (200 words limit) [Media: see text] [Media: see text] [Media: see text] [Media: see text].

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10.1091/mbc.e26-01-0058

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Kubo, Tomohiro, Natsumi Tajima-Shirasaki, Rinka Sasaki, Toshiyuki Oda and Masayuki Onishi (2026). Tubulin Acetylation Deficiency Promotes Axonemal Turnover and Increases Cytoplasmic Microtubules. Molecular biology of the cell. p. mbcE26010058. 10.1091/mbc.e26-01-0058 Retrieved from https://hdl.handle.net/10161/34596.

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Onishi

Masayuki Onishi

Assistant Professor of Biology

The overall goal of the Onishi lab is to understand the fundamental core mechanisms of eukaryotic cell division that have been conserved throughout the evolution from the last eukaryotic common ancestor.  To this end, the lab currently uses the unicellular model green alga Chlamydomonas reinhardtii, which is evolutionarily close to plants yet divide like animals by forming a cleavage furrow.  Strikingly, unlike animals, this organism does not have a non-muscle type-II myosin that has been believed to be essential for furrowing.  In fact, animals, fungi, slime molds, and related species are the exceptions in that they have this myosin motor protein, and the vast majority of the eukaryotes divide by some mechanism that we don't fully understand.  Our work aims to understand how the cells without type-II myosin manage to form a cleavage furrow, which should shed light on the questions such as:
(1) How did the ancestral cells divide?
(2) What was the evolutionary advantage of type-II myosin when it emerged in the select lineage?
(3) How did the unique evolution into modern land plants happen?

 


In the lab, we use the power of genetics, genomics, and molecular and cellular biology.  Specific questions include, but not limited to:
How do the three cytoskeletal systems (actin, microtubules, and septin) contribute to cell division?
What is the involvement of extracellular matrix and the ESCRT system?
How do the known and yet-to-be known genes interact with one another to control cell division?



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