Stasyk Olena G, Maidan Mykola M, Stasyk Oleh V, Van Dijck Patrick, Thevelein Johan M, Sibirny Andriy A
Institute of Cell Biology, National Academy of Sciences of Ukraine, Drahomanov St. 14/16, Lviv 79005, Ukraine.
Eukaryot Cell. 2008 Apr;7(4):735-46. doi: 10.1128/EC.00028-08. Epub 2008 Feb 29.
We identified in the methylotrophic yeast Hansenula polymorpha (syn. Pichia angusta) a novel hexose transporter homologue gene, HXS1 (hexose sensor), involved in transcriptional regulation in response to hexoses, and a regular hexose carrier gene, HXT1 (hexose transporter). The Hxs1 protein exhibits the highest degree of primary sequence similarity to the Saccharomyces cerevisiae transporter-like glucose sensors, Snf3 and Rgt2. When heterologously overexpressed in an S. cerevisiae hexose transporter-less mutant, Hxt1, but not Hxs1, restores growth on glucose or fructose, suggesting that Hxs1 is nonfunctional as a carrier. In its native host, HXS1 is expressed at moderately low level and is required for glucose induction of the H. polymorpha functional low-affinity glucose transporter Hxt1. Similarly to other yeast sensors, one conserved amino acid substitution in the Hxs1 sequence (R203K) converts the protein into a constitutively signaling form and the C-terminal region of Hxs1 is essential for its function in hexose sensing. Hxs1 is not required for glucose repression or catabolite inactivation that involves autophagic degradation of peroxisomes. However, HXS1 deficiency leads to significantly impaired transient transcriptional repression in response to fructose, probably due to the stronger defect in transport of this hexose in the hxs1Delta deletion strain. Our combined results suggest that in the Crabtree-negative yeast H. polymorpha, the single transporter-like sensor Hxs1 mediates signaling in the hexose induction pathway, whereas the rate of hexose uptake affects the strength of catabolite repression.
我们在甲基营养型酵母多形汉逊酵母(同义词:奥古斯塔毕赤酵母)中鉴定出一个新的己糖转运蛋白同源基因HXS1(己糖传感器),它参与响应己糖的转录调控,以及一个常规的己糖载体基因HXT1(己糖转运蛋白)。Hxs1蛋白与酿酒酵母中类似转运蛋白的葡萄糖传感器Snf3和Rgt2具有最高程度的一级序列相似性。当在酿酒酵母己糖转运蛋白缺失突变体中异源过表达时,Hxt1而非Hxs1能恢复在葡萄糖或果糖上的生长,这表明Hxs1作为载体无功能。在其天然宿主中,HXS1以适度低水平表达,并且是多形汉逊酵母功能性低亲和力葡萄糖转运蛋白Hxt1的葡萄糖诱导所必需的。与其他酵母传感器类似,Hxs1序列中的一个保守氨基酸取代(R203K)将该蛋白转化为组成型信号传导形式,并且Hxs1的C末端区域对于其在己糖传感中的功能至关重要。葡萄糖阻遏或涉及过氧化物酶体自噬降解的分解代谢失活不需要Hxs1。然而,HXS1缺陷导致对果糖响应的瞬时转录阻遏显著受损,这可能是由于hxs1Delta缺失菌株中这种己糖转运的更强缺陷。我们的综合结果表明,在克勒勃屈利效应阴性酵母多形汉逊酵母中,单一的类似转运蛋白的传感器Hxs1在己糖诱导途径中介导信号传导,而己糖摄取速率影响分解代谢阻遏的强度。