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[生长条件对光合细菌中3':5'-环化腺苷酸合成与降解酶活性的影响]

[Effect of growth conditions on the activity of the enzymes of cyclic 3':5'-AMP synthesis and decay in phototrophic bacteria].

作者信息

Guliev N M, Fedenko E P, Komarova T I, Doman N G

出版信息

Biokhimiia. 1978 May;43(5):928-34.

PMID:207363
Abstract

Activity, ratio and summary content of cyclic AMP enzymes, adenylate cyclase and phosphodiesterase varied depending on growth conditions of phototrophic bacteria (Rhodospirillum rubrum and Rhodopseudomonas palustris). It suggests, that membrane-bound and soluble enzymes carry different functions. The increase of adenylate cyclase under chaning growth conditions was usually accompanied by the increase of phosphodiesterase. Sharp increase of both enzymes activity was observed when bacteria were growth in aerobic conditions. The activity of both enzymes in chromatophores was 2.8-fold higher when bacteria were grown in the light in anaerobic conditions, than in chromatophores of bacteria grown under stationary aerobic conditions in the light. It is suggested that 3':5' AMP can participate in autotrophic carbon assimilation or in the synthesis of pigments and other components of bacterial photosynthetizing apparatus. Substitution of NH4+ into NO3- and glutamate under the growing of R. rubrum in anaerobic conditions in the light resulted in the increase of the enzymes activities, which is the evidence of possible role of 3':5' AMP in mineral nitrogen uptake and nitrogen fixation. Glutamate concentration of 4 g/l stimulated the enzymes both in vivo and in vitro. The data obtained suggest that 3':5' AMP can carry multiple functions, participating in regulation of a number of metabolic processes in photorophic bacteria.

摘要

环磷酸腺苷(cAMP)酶、腺苷酸环化酶和磷酸二酯酶的活性、比率及汇总内容随光合细菌(深红红螺菌和沼泽红假单胞菌)的生长条件而变化。这表明,膜结合酶和可溶性酶具有不同的功能。在变化的生长条件下,腺苷酸环化酶的增加通常伴随着磷酸二酯酶的增加。当细菌在有氧条件下生长时,观察到这两种酶的活性急剧增加。当细菌在光照厌氧条件下生长时,其载色体中这两种酶的活性比在光照需氧静止条件下生长的细菌的载色体中的活性高2.8倍。有人提出,3':5'-AMP可能参与自养碳同化或细菌光合装置色素及其他成分的合成。在光照厌氧条件下,用NH4+替代深红红螺菌生长培养基中的NO3-和谷氨酸会导致酶活性增加,这证明3':5'-AMP在矿质氮吸收和固氮中可能发挥作用。4 g/l的谷氨酸浓度在体内和体外均刺激了这些酶。所得数据表明,3':5'-AMP可发挥多种功能,参与光合细菌中许多代谢过程的调节。

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