氮调节剂AreA通过uga2调节毛霉的脂质代谢

IF 2.9 3区 生物学 Q2 MYCOLOGY
Xiuwen Wang , Hassan Mohamed , Qing Liu , Zhaosen Fan , Yuanda Song
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引用次数: 0

摘要

产油丝状真菌环毛霉含有一个调控氮代谢的GATA转录激活子区。在我们之前的研究中,AreA的缺失导致了脂质生成的增加,而其过表达则减少了脂质合成。虽然它不是直接的脂肪生成调节剂,但它通过调节氮利用途径来影响代谢通量,从而影响碳分布。其中一种途径是GABA分流,这是一种绕过TCA循环两步的替代途径,有助于在氮限制条件下补充TCA中间体。编码琥珀酸半醛脱氢酶的uga2基因在这种分流中起关键作用。我们分别在野生型菌株、area -敲除菌株和area -过表达菌株中构建了uga2敲除菌株。结果表明,单敲除uga2使脂肪酸含量从24.5%增加到32.7%,而双敲除areA和uga2脂肪酸含量最高,达到36.1%。areA过表达结合uga2敲除也导致脂质积累增加高达32.4%。脂肪酸合成相关的基因表达水平和酶活性表明,uga2的缺失可能导致碳氮代谢失衡,使碳通量转向脂肪生成。这表明AreA可能通过调节uga2来调节圆叶田鼠的脂质代谢。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The nitrogen regulator AreA modulates lipid metabolism through uga2 in Mucor circinelloides
Oleaginous filamentous fungus Mucor circinelloides harbors a GATA transcription activator AreA, which regulates nitrogen metabolism. In our previous study, deletion of AreA resulted in increased lipid production, while its overexpression reduced lipid synthesis. Although it is not a direct lipogenesis regulator, AreA influences metabolic flux by modulating nitrogen utilization pathways, which in turn affects carbon distribution. One such pathway is the GABA shunt, an alternative route that bypasses two steps of TCA cycle and contributes to replenishing TCA intermediates under nitrogen-limited conditions. The uga2 gene, encoding succinate semialdehyde dehydrogenase, plays a key role in this shunt. We constructed UGA2-knockout strain in wild-type, AreA-knockout and AreA-overexpression strains, respectively. Results showed that single knockout of uga2 increased fatty acid content from 24.5 % to 32.7 %, while double knockout of areA and uga2 exhibited the highest fatty acid content at 36.1 %. The areA overexpression combined with uga2 knockout also resulted in increased lipid accumulation up to 32.4 %. The gene expression levels and enzyme activities related to fatty acid synthesis showed that deletion of uga2 may lead to carbon-nitrogen metabolism disequilibrium, shifting carbon flux towards lipogenesis. This indicated that AreA might regulate lipid metabolism through the modulation of uga2 in M. circinelloides.
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来源期刊
Fungal biology
Fungal biology MYCOLOGY-
CiteScore
5.80
自引率
4.00%
发文量
80
审稿时长
49 days
期刊介绍: Fungal Biology publishes original contributions in all fields of basic and applied research involving fungi and fungus-like organisms (including oomycetes and slime moulds). Areas of investigation include biodeterioration, biotechnology, cell and developmental biology, ecology, evolution, genetics, geomycology, medical mycology, mutualistic interactions (including lichens and mycorrhizas), physiology, plant pathology, secondary metabolites, and taxonomy and systematics. Submissions on experimental methods are also welcomed. Priority is given to contributions likely to be of interest to a wide international audience.
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