Glucose-induced endocytic degradation of the maltose transporter MalP is mediated through ubiquitination by the HECT-ubiquitin ligase HulA and its adaptor CreD in Aspergillus oryzae

IF 2.4 3区 生物学 Q3 GENETICS & HEREDITY
Shoki Fujita , Hinako Tada , Yuka Matsuura , Tetsuya Hiramoto , Mizuki Tanaka , Takahiro Shintani , Katsuya Gomi
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引用次数: 0

Abstract

In the filamentous fungus Aspergillus oryzae, large amounts of amylolytic enzymes are inducibly produced by isomaltose, which is converted from maltose incorporated via the maltose transporter MalP. In contrast, the preferred sugar glucose strongly represses the expression of both amylolytic and malP genes through carbon catabolite repression. Simultaneously, the addition of glucose triggers the endocytic degradation of MalP on the plasma membrane. In budding yeast, the signal-dependent ubiquitin modification of plasma membrane transporters leads to selective endocytosis into the vacuole for degradation. In addition, during glucose-induced MalP degradation, the homologous of E6AP C-terminus-type E3 ubiquitin ligase (HulA) is responsible for the ubiquitin modification of MalP, and the arrestin-like protein CreD is required for HulA targeting. Although CreD-mediated MalP internalization occurs in response to glucose, the mechanism by which CreD regulates HulA-dependent MalP ubiquitination remains unclear. In this study, we demonstrated that three (P/L)PxY motifs present in the CreD protein are essential for functioning as HulA adaptors so that HulA can recognize MalP in response to glucose stimulation, enabling MalP internalization. Furthermore, four lysine residues (three highly conserved among Aspergillus species and yeast and one conserved among Aspergillus species) of CreD were found to be necessary for its ubiquitination, resulting in efficient glucose-induced MalP endocytosis. The results of this study pave the way for elucidating the regulatory mechanism of MalP endocytic degradation through ubiquitination by the HulA–CreD complex at the molecular level.

在黑曲霉中,葡萄糖诱导的麦芽糖转运体 MalP 的内切降解是通过 HECT 泛素连接酶 HulA 及其适配体 CreD 的泛素化作用介导的
在丝状真菌黑曲霉(Aspergillus oryzae)中,异麦芽糖会诱导产生大量淀粉溶解酶,而淀粉溶解酶是由麦芽糖转运体 MalP 转化而来的。相反,首选糖葡萄糖则通过碳代谢抑制作用强烈抑制淀粉溶解酶和 MalP 基因的表达。与此同时,葡萄糖的加入会触发 MalP 在质膜上的内切降解。在芽殖酵母中,质膜转运体的泛素修饰依赖于信号,导致其选择性内吞进入液泡降解。此外,在葡萄糖诱导的 MalP 降解过程中,E6AP C 端型 E3 泛素连接酶(HulA)的同源物负责对 MalP 进行泛素修饰,而 HulA 的靶向需要捕获素样蛋白 CreD。虽然 CreD 介导的 MalP 内化发生在对葡萄糖的反应中,但 CreD 调节 HulA 依赖性 MalP 泛素化的机制仍不清楚。在这项研究中,我们证明了 CreD 蛋白中的三个 (P/L)PxY 基序是作为 HulA 适应子发挥作用的必要条件,这样 HulA 才能在葡萄糖刺激下识别 MalP,从而使 MalP 内化。此外,研究还发现 CreD 的四个赖氨酸残基(三个在曲霉和酵母中高度保守,一个在曲霉中保守)是其泛素化所必需的,从而导致葡萄糖诱导 MalP 的高效内吞。该研究结果为在分子水平上阐明 HulA-CreD 复合物通过泛素化降解 MalP 内吞的调控机制铺平了道路。
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来源期刊
Fungal Genetics and Biology
Fungal Genetics and Biology 生物-遗传学
CiteScore
6.20
自引率
3.30%
发文量
66
审稿时长
85 days
期刊介绍: Fungal Genetics and Biology, formerly known as Experimental Mycology, publishes experimental investigations of fungi and their traditional allies that relate structure and function to growth, reproduction, morphogenesis, and differentiation. This journal especially welcomes studies of gene organization and expression and of developmental processes at the cellular, subcellular, and molecular levels. The journal also includes suitable experimental inquiries into fungal cytology, biochemistry, physiology, genetics, and phylogeny. Fungal Genetics and Biology publishes basic research conducted by mycologists, cell biologists, biochemists, geneticists, and molecular biologists. Research Areas include: • Biochemistry • Cytology • Developmental biology • Evolutionary biology • Genetics • Molecular biology • Phylogeny • Physiology.
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