1.Diagnosis and treatment of renal tuberculosis(report of 52 cases)
Guobiao LIANG ; Yinchu SHEN ; Xu LUO
Chinese Journal of Urology 2000;0(01):-
Objective To investigate the clinical manifestations,diagnosis and treatment of renal tuberculosis(TB). Methods This series included 52 patients with renal TB.Of them 36 cases (69%) presented with irritative symptoms.10 cases (19%) had lumbago accompanied by hematuria.6 cases (11%) had renal angina and 6(11%) painless hematuria.B-ultrasonography suggested renal TB in 20 cases and unilateral hydronephrosis in 22 cases;renogram showed that the diseased kidneys had no function in 31 cases.Urinal AFB and tuberculosis PCR(Tb-PCR) were performed in 38 cases,the results were positive in 13(34%)and 21(55%),respectively.27 cases were misdiagnosed to have calculi or inflammation.Treatments consisted of antituberculous chemotherapy in 12 cases (23%)and surgery in 40(77%). Results All of the 12 cases who received medications recovered completely.40 cases undergoing surgery were pathologically diagnosed to have renal TB;of them 5 cases developed ureteral stump syndrome. Conclusions Urine AFB and Tb-PCR remain the primary diagnostic methods before operation.When the non-functioning kidney is resected,the involved ureter should be concomitantly resected as much as possible.
2.A NEW TYPE OF BIOPESTICIDE——SPINOSYN
Ronggui LI ; Pu WANG ; Jianfeng MEI ; Yinchu SHEN ;
Microbiology 1992;0(01):-
Spinosyns are secondary metabolites from the aerobic fermentation of saccharopolyspora spinosa Spinosyn is a kind of broad spectrum insecticide, which has contact and ingestion toxicity on insects On lepidopteran insects, spinosad (a mixture of spinosyn A and spinosyn D) is one of the most selective compounds ever discovered In this paper, the structure, biosynthesis, property and process of spinosyns are reviewed
3.Progress in metabolic engineering of microbial production of 1,3-dihydroxyacetone.
Lihui SUN ; Zhongce HU ; Yuguo ZHENG ; Yinchu SHEN
Chinese Journal of Biotechnology 2010;26(9):1218-1224
1,3-Dihydroxyacetone is widely used in cosmetics, medicines and food products. We reviewed the recent progress in metabolic pathways, key enzymes, as well as metabolic engineering for microbial production of 1,3-dihydroxyacetone. We addressed the research trend to increase yield of 1,3-dihydroxyacetone by improving the activity of glycerol dehydrogenase with genetic engineering, and regulating of fermentation process based on metabolic characteristic of the strain.
Dihydroxyacetone
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biosynthesis
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Fermentation
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Genetic Engineering
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methods
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Gluconobacter oxydans
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genetics
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metabolism
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Industrial Microbiology
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methods
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Metabolic Engineering
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methods
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Sugar Alcohol Dehydrogenases
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metabolism
4.Applications of nitrile converting enzymes in the production of fine chemicals.
Yuguo ZHENG ; Yaping XUE ; Zhiqiang LIU ; Renchao ZHENG ; Yinchu SHEN
Chinese Journal of Biotechnology 2009;25(12):1795-1807
Nitriles are an important type of synthetic intermediates in the production of fine chemicals because of their easy preparations and versatile transformations. The traditional chemical conversion of nitriles to carboxylic acids and amides is feasible but it requires relatively harsh conditions of heat, acid or alkali. Nitrile converting enzymes (nitrilase, nitrile hydratase and amidase) which are used as biocatalyst for the production of fine chemicals have attracted substantial interest because of their ability to convert readily available nitriles into the corresponding higher value amides or acids under mild conditions with excellent chemo-, regio- and stereo-selectivities. Many nitrile converting enzymes have been explored and widely used for the production of fine chemicals. In this paper, various examples of biocatalytic synthesis of pharmaceuticals and their intermediates, agrochemicals and their intermediates, food and feed additives, and other fine chemicals are presented. In the near future, an increasing number of novel nitrile converting enzymes will be screened and their potential in the production of useful fine chemicals will be further exploited.
Amides
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metabolism
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Amidohydrolases
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metabolism
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Aminohydrolases
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metabolism
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Carboxylic Acids
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metabolism
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Chemical Industry
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methods
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Hydro-Lyases
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metabolism
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Nitriles
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chemistry