De Biase D, Tramonti A, Bossa F, Visca P
Dipartimento di Scienze Biochimiche 'A. Rossi Fanelli' and Centro di Biologia Molecolare del Consiglio Nazionale delle Ricerche, Università di Roma 'La Sapienza', Piazzale Aldo Moro 5, 00185 Roma, Italy.
Mol Microbiol. 1999 Jun;32(6):1198-211. doi: 10.1046/j.1365-2958.1999.01430.x.
Inducible bacterial amino acid decarboxylases are expressed at the end of active cell division to counteract acidification of the extracellular environment during fermentative growth. It has been proposed that acid resistance in some enteric bacteria strictly relies on a glutamic acid-dependent system. The Escherichia coli chromosome contains distinct genes encoding two biochemically identical isoforms of glutamic acid decarboxylase, GadA and GadB. The gadC gene, located downstream of gadB, has been proposed to encode a putative antiporter implicated in the export of gamma-aminobutyrate, the glutamic acid decarboxylation product. In the present work, we provide in vivo evidence that gadC is co-transcribed with gadB and that the functional glutamic acid-dependent system requires the activities of both GadA/B and GadC. We also found that expression of gad genes is positively regulated by acidic shock, salt stress and stationary growth phase. Mutations in hns, the gene for the histone-like protein H-NS, cause derepressed expression of the gad genes, whereas the rpoS mutation abrogates gad transcription even in the hns background. According to our results, the master regulators H-NS and RpoS are hierarchically involved in the transcriptional control of gad expression: H-NS prevents gad expression during the exponential growth whereas the alternative sigma factor RpoS relieves H-NS repression during the stationary phase, directly or indirectly accounting for transcription of gad genes.
可诱导的细菌氨基酸脱羧酶在活跃细胞分裂末期表达,以抵消发酵生长过程中细胞外环境的酸化。有人提出,一些肠道细菌中的耐酸性严格依赖于谷氨酸依赖系统。大肠杆菌染色体包含编码谷氨酸脱羧酶两种生化特性相同的同工型GadA和GadB的不同基因。位于gadB下游的gadC基因被认为编码一种推定的反向转运蛋白,参与γ-氨基丁酸(谷氨酸脱羧产物)的输出。在本研究中,我们提供了体内证据,证明gadC与gadB共转录,且功能性谷氨酸依赖系统需要GadA/B和GadC的活性。我们还发现,gad基因的表达受到酸性休克、盐胁迫和稳定生长期的正调控。组蛋白样蛋白H-NS的编码基因hns中的突变导致gad基因的表达去阻遏,而rpoS突变即使在hns背景下也会消除gad转录。根据我们的结果,主要调节因子H-NS和RpoS分级参与gad表达的转录控制:H-NS在指数生长期阻止gad表达,而替代σ因子RpoS在稳定期解除H-NS的抑制作用, 直接或间接导致gad基因的转录。