Section of Molecular Biology, Division of Biological Sciences, University of California, San Diego, La Jolla, CA 92093, USA.
Mol Biol Cell. 2012 Apr;23(7):1307-15. doi: 10.1091/mbc.E11-09-0782. Epub 2012 Feb 15.
Peroxisome division is regulated by the conserved peroxin Pex11p. In Saccharomyces cerevisiae (Sc), induction of the phosphoprotein ScPex11p coincides with peroxisome biogenesis. We show that the ScPex11p homologue in Pichia pastoris (PpPex11p) is phosphorylated at serine 173. PpPex11p expression and phosphorylation are induced in oleate and coordinated with peroxisome biogenesis. PpPex11p transits to peroxisomes via the endoplasmic reticulum (ER). PpPex11p is unstable and ER restricted gin pex3Δ and pex19Δ cells, which are impaired in peroxisomal membrane protein biogenesis. In oleate medium, the P. pastoris mutants pex11A (constitutively unphosphorylated; S173A) and pex11D (constitutively phosphorylated; S173D) exhibit juxtaposed elongated peroxisomes (JEPs) and hyperdivided forms, respectively, although protein levels remain unchanged. In contrast with ScPex11p, the ER-to-peroxisome translocation in P. pastoris is phosphorylation independent, and the phosphorylation occurs at the peroxisome. We show that PpPex11p interacts with the peroxisome fission machinery via PpFis1p and is regulated by phosphorylation because PpPex11p and PpPex11Dp interact more strongly with PpFis1p than PpPex11Ap. Neither PpPex11p nor PpFis1p is necessary for peroxisome division in methanol medium. We propose a model for the role of PpPex11p in the regulation of peroxisome division through a phosphorylation-dependent interaction with the fission machinery, providing novel insights into peroxisome morphogenesis.
过氧化物酶体的分裂受保守的过氧化物酶体蛋白 Pex11p 调节。在酿酒酵母(Sc)中,磷酸化 ScPex11p 的诱导与过氧化物酶体的生物发生同时发生。我们表明,巴斯德毕赤酵母(Pp)中的 ScPex11p 同源物 PpPex11p 在丝氨酸 173 处被磷酸化。在油酸钠和过氧化物酶体生物发生的协调作用下,PpPex11p 的表达和磷酸化被诱导。PpPex11p 通过内质网(ER)转运到过氧化物酶体。PpPex11p 在 pex3Δ 和 pex19Δ 细胞中不稳定且局限于 ER,这两种细胞在过氧化物酶体膜蛋白的生物发生中受到损害。在油酸钠培养基中,P. pastoris 突变体 pex11A(持续非磷酸化;S173A)和 pex11D(持续磷酸化;S173D)分别表现出并列的伸长过氧化物酶体(JEPs)和超分裂形式,尽管蛋白质水平保持不变。与 ScPex11p 不同,巴斯德毕赤酵母的 ER 到过氧化物酶体的转位与磷酸化无关,并且磷酸化发生在过氧化物酶体上。我们表明,PpPex11p 通过 PpFis1p 与过氧化物酶体分裂机制相互作用,并通过磷酸化调节,因为 PpPex11p 和 PpPex11Dp 与 PpFis1p 的相互作用比 PpPex11Ap 更强。在甲醇培养基中,PpPex11p 或 PpFis1p 都不是过氧化物酶体分裂所必需的。我们提出了一个模型,即 PpPex11p 通过与分裂机制的磷酸化依赖性相互作用,在过氧化物酶体分裂的调节中发挥作用,为过氧化物酶体形态发生提供了新的见解。