日期:
2020 年 — 2026 年
2020
2021
2022
2023
2024
2025
2026
影响因子:

Clinical on-site monitoring of ß-lactam antibiotics for a personalized antibiotherapy

β-内酰胺类抗生素的临床现场监测,实现个性化抗生素治疗

R Bruch, C Chatelle, A Kling, B Rebmann, S Wirth, S Schumann, W Weber, C Dincer, G Urban

Use of self-actuating and self-sensing cantilevers for imaging biological samples in fluid.

利用自驱动和自感知悬臂梁对流体中的生物样品进行成像

Fantner G E, Schumann W, Barbero R J, Deutschinger A, Todorov V, Gray D S, Belcher A M, Rangelow I W, Youcef-Toumi K

Essential Bacillus subtilis genes

枯草芽孢杆菌必需基因

Kobayashi, K; Ehrlich, S D; Albertini, A; Amati, G; Andersen, K K; Arnaud, M; Asai, K; Ashikaga, S; Aymerich, S; Bessieres, P; Boland, F; Brignell, S C; Bron, S; Bunai, K; Chapuis, J; Christiansen, L C; Danchin, A; Débarbouille, M; Dervyn, E; Deuerling, E; Devine, K; Devine, S K; Dreesen, O; Errington, J; Fillinger, S; Foster, S J; Fujita, Y; Galizzi, A; Gardan, R; Eschevins, C; Fukushima, T; Haga, K; Harwood, C R; Hecker, M; Hosoya, D; Hullo, M F; Kakeshita, H; Karamata, D; Kasahara, Y; Kawamura, F; Koga, K; Koski, P; Kuwana, R; Imamura, D; Ishimaru, M; Ishikawa, S; Ishio, I; Le Coq, D; Masson, A; Mauël, C; Meima, R; Mellado, R P; Moir, A; Moriya, S; Nagakawa, E; Nanamiya, H; Nakai, S; Nygaard, P; Ogura, M; Ohanan, T; O'Reilly, M; O'Rourke, M; Pragai, Z; Pooley, H M; Rapoport, G; Rawlins, J P; Rivas, L A; Rivolta, C; Sadaie, A; Sadaie, Y; Sarvas, M; Sato, T; Saxild, H H; Scanlan, E; Schumann, W; Seegers, J F M L; Sekiguchi, J; Sekowska, A; Séror, S J; Simon, M; Stragier, P; Studer, R; Takamatsu, H; Tanaka, T; Takeuchi, M; Thomaides, H B; Vagner, V; van Dijl, J M; Watabe, K; Wipat, A; Yamamoto, H; Yamamoto, M; Yamamoto, Y; Yamane, K; Yata, K; Yoshida, K; Yoshikawa, H; Zuber, U; Ogasawara, N

Transcriptional control of Bacillus subtilis hemN and hemZ

枯草芽孢杆菌hemN和hemZ的转录调控

Homuth, G; Rompf, A; Schumann, W; Jahn, D

Functional analysis of the secretory precursor processing machinery of Bacillus subtilis: identification of a eubacterial homolog of archaeal and eukaryotic signal peptidases

枯草芽孢杆菌分泌前体加工机制的功能分析:鉴定古细菌和真核生物信号肽酶的真细菌同源物

Tjalsma, H; Bolhuis, A; van Roosmalen, M L; Wiegert, T; Schumann, W; Broekhuizen, C P; Quax, W J; Venema, G; Bron, S; van Dijl, J M

The GroE chaperonin machine is a major modulator of the CIRCE heat shock regulon of Bacillus subtilis

GroE分子伴侣是枯草芽孢杆菌CIRCE热休克调节子的主要调节因子

Mogk, A; Homuth, G; Scholz, C; Kim, L; Schmid, F X; Schumann, W

Characterization of Bacillus subtilis hemN

枯草芽孢杆菌hemN的特性

Hippler, B; Homuth, G; Hoffmann, T; Hungerer, C; Schumann, W; Jahn, D

The htpG gene of Bacillus subtilis belongs to class III heat shock genes and is under negative control

枯草芽孢杆菌的htpG基因属于III类热休克基因,并受负调控。

Schulz, A; Schwab, S; Homuth, G; Versteeg, S; Schumann, W

Contributions of gluconeogenesis to glucose production in the fasted state

空腹状态下糖异生对葡萄糖生成的贡献

Landau, B R; Wahren, J; Chandramouli, V; Schumann, W C; Ekberg, K; Kalhan, S C

hrcA, the first gene of the Bacillus subtilis dnaK operon encodes a negative regulator of class I heat shock genes

枯草芽孢杆菌 dnaK 操纵子的第一个基因 hrcA 编码 I 类热休克基因的负调控因子。

Schulz, A; Schumann, W