Literature DB >> 33323015

Autophosphorylation-induced self-assembly and STIL-dependent reinforcement underlie Plk4's ring-to-dot localization conversion around a human centriole.

Jung-Eun Park1, Lingjun Meng1, Eun Kyoung Ryu2, Kunio Nagashima3, Ulrich Baxa3, Jeong Kyu Bang2, Kyung S Lee1.   

Abstract

Polo-like kinase 4 (Plk4) is a key regulator of centriole biogenesis. Studies have shown that Plk4 undergoes dynamic relocalization from a ring-like pattern around a centriole to a dot-like morphology at the procentriole assembly site and this event is central for inducing centriole biogenesis. However, the detailed mechanisms underlying Plk4's capacity to drive its symmetry-breaking ring-to-dot relocalization remain largely unknown. Here, we showed that Plk4 self-initiates this process in an autophosphorylation-dependent manner and that STIL, its downstream target, is not required for this event. Time-dependent analyses with mEOS-fused photoconvertible Plk4 revealed that a portion of ring-state Plk4 acquires a capacity, presumably through autophosphorylation, to linger around a centriole, ultimately generating a dot-state morphology. Interestingly, Plk4 WT, but not its catalytically inactive mutant, showed the ability to form a nanoscale spherical assembly in the cytosol of human cells or heterologous E. coli, demonstrating its autophosphorylation-dependent self-organizing capacity. At the biochemical level, Plk4 - unlike its N-terminal βTrCP degron motif - robustly autophosphorylated the PC3 SSTT motif within its C-terminal cryptic polo-box, an event critical for inducing its physical clustering. Additional in vivo experiments showed that although STIL was not required for Plk4's initial ring-to-dot conversion, coexpressed STIL greatly enhanced Plk4's ability to generate a spherical condensate and recruit Sas6, a major component of the centriolar cartwheel structure. We propose that Plk4's autophosphorylation-induced clustering is sufficient to induce its ring-to-dot localization conversion and that subsequently recruited STIL potentiates this process to generate a procentriole assembly body critical for Plk4-dependent centriole biogenesis.

Entities:  

Keywords:  Polo-like kinase 4; centriole biogenesis; centrosomes; phase separation; protein phosphorylation

Mesh:

Substances:

Year:  2020        PMID: 33323015      PMCID: PMC7781628          DOI: 10.1080/15384101.2020.1843772

Source DB:  PubMed          Journal:  Cell Cycle        ISSN: 1551-4005            Impact factor:   4.534


  38 in total

Review 1.  Centrosomes and cancer: revisiting a long-standing relationship.

Authors:  Pierre Gönczy
Journal:  Nat Rev Cancer       Date:  2015-11       Impact factor: 60.716

2.  Cell-cycle-regulated expression of STIL controls centriole number in human cells.

Authors:  Christian Arquint; Katharina F Sonnen; York-Dieter Stierhof; Erich A Nigg
Journal:  J Cell Sci       Date:  2012-02-20       Impact factor: 5.285

3.  The SCF/Slimb ubiquitin ligase limits centrosome amplification through degradation of SAK/PLK4.

Authors:  Inês Cunha-Ferreira; Ana Rodrigues-Martins; Inês Bento; Maria Riparbelli; Wei Zhang; Ernest Laue; Giuliano Callaini; David M Glover; Mónica Bettencourt-Dias
Journal:  Curr Biol       Date:  2008-12-11       Impact factor: 10.834

4.  Polo-like kinase 4 autodestructs by generating its Slimb-binding phosphodegron.

Authors:  Joseph E Klebba; Daniel W Buster; Annie L Nguyen; Stephen Swatkoski; Marjan Gucek; Nasser M Rusan; Gregory C Rogers
Journal:  Curr Biol       Date:  2013-10-31       Impact factor: 10.834

5.  Hierarchical recruitment of Plk4 and regulation of centriole biogenesis by two centrosomal scaffolds, Cep192 and Cep152.

Authors:  Tae-Sung Kim; Jung-Eun Park; Anil Shukla; Sunho Choi; Ravichandran N Murugan; Jin H Lee; Mija Ahn; Kunsoo Rhee; Jeong K Bang; Bo Y Kim; Jadranka Loncarek; Raymond L Erikson; Kyung S Lee
Journal:  Proc Natl Acad Sci U S A       Date:  2013-11-25       Impact factor: 11.205

6.  p53 protects against genome instability following centriole duplication failure.

Authors:  Bramwell G Lambrus; Yumi Uetake; Kevin M Clutario; Vikas Daggubati; Michael Snyder; Greenfield Sluder; Andrew J Holland
Journal:  J Cell Biol       Date:  2015-07-06       Impact factor: 10.539

Review 7.  The PLK4-STIL-SAS-6 module at the core of centriole duplication.

Authors:  Christian Arquint; Erich A Nigg
Journal:  Biochem Soc Trans       Date:  2016-10-15       Impact factor: 5.407

8.  A theory of centriole duplication based on self-organized spatial pattern formation.

Authors:  Daisuke Takao; Shohei Yamamoto; Daiju Kitagawa
Journal:  J Cell Biol       Date:  2019-08-26       Impact factor: 10.539

9.  Molecular basis for unidirectional scaffold switching of human Plk4 in centriole biogenesis.

Authors:  Suk-Youl Park; Jung-Eun Park; Tae-Sung Kim; Ju Hee Kim; Mi-Jeong Kwak; Bonsu Ku; Lan Tian; Ravichandran N Murugan; Mija Ahn; Shinobu Komiya; Hironobu Hojo; Nam-Hyung Kim; Bo Yeon Kim; Jeong K Bang; Raymond L Erikson; Ki Won Lee; Seung Jun Kim; Byung-Ha Oh; Wei Yang; Kyung S Lee
Journal:  Nat Struct Mol Biol       Date:  2014-06-29       Impact factor: 15.369

10.  Molecular basis of the STIL coiled coil oligomerization explains its requirement for de-novo formation of centrosomes in mammalian cells.

Authors:  Ahuvit David; Hadar Amartely; Noa Rabinowicz; Mai Shamir; Assaf Friedler; Shai Izraeli
Journal:  Sci Rep       Date:  2016-04-14       Impact factor: 4.379

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