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Table representation of search results timeline featuring number of search results per year.

Year Number of Results
1946 2
1947 1
1952 1
1953 1
1954 3
1960 1
1961 1
1962 1
1964 1
1965 3
1966 2
1967 2
1968 3
1969 5
1970 8
1971 9
1972 4
1973 5
1974 15
1975 18
1976 10
1977 21
1978 12
1979 21
1980 21
1981 19
1982 19
1983 33
1984 33
1985 26
1986 31
1987 44
1988 51
1989 108
1990 115
1991 107
1992 166
1993 163
1994 215
1995 266
1996 285
1997 347
1998 349
1999 396
2000 479
2001 574
2002 695
2003 788
2004 1009
2005 1208
2006 1361
2007 1490
2008 1691
2009 1821
2010 1998
2011 2412
2012 2485
2013 2890
2014 3440
2015 3844
2016 3979
2017 4203
2018 4947
2019 5675
2020 6436
2021 7159
2022 8145
2023 8016
2024 3543

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73,796 results

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Page 1
Didymellaceae revisited.
Chen Q, Hou LW, Duan WJ, Crous PW, Cai L. Chen Q, et al. Stud Mycol. 2017 Jun;87:105-159. doi: 10.1016/j.simyco.2017.06.002. Epub 2017 Jun 9. Stud Mycol. 2017. PMID: 28706324 Free PMC article.
Advances in the enzymatic production of L-hexoses.
Chen Z, Zhang W, Zhang T, Jiang B, Mu W. Chen Z, et al. Appl Microbiol Biotechnol. 2016 Aug;100(16):6971-9. doi: 10.1007/s00253-016-7694-2. Epub 2016 Jun 25. Appl Microbiol Biotechnol. 2016. PMID: 27344591 Review.
In hexose Izumoring, four entrances link the D- to L-enantiomers, ketose 3-epimerases catalyze the C-3 epimerization of L-ketohexoses, and aldose isomerases catalyze the specific bioconversion of L-ketohexoses and the corresponding L-aldohexoses. In th …
In hexose Izumoring, four entrances link the D- to L-enantiomers, ketose 3-epimerases catalyze the C-3 epimerization of L-keto …
Microbial and enzymatic strategies for the production of L-ribose.
Chen M, Wu H, Zhang W, Mu W. Chen M, et al. Appl Microbiol Biotechnol. 2020 Apr;104(8):3321-3329. doi: 10.1007/s00253-020-10471-9. Epub 2020 Feb 22. Appl Microbiol Biotechnol. 2020. PMID: 32088757 Review.
Furthermore, analysis of the separation issues of L-ribose from the reaction solution and different purification methods is presented.Key points l -Arabinose, l -ribulose and ribitol can be used to produce l -ribose by enzymes. Five enzymes are systema …
Furthermore, analysis of the separation issues of L-ribose from the reaction solution and different purification methods is presented …
Resolving the Phoma enigma.
Chen Q, Jiang JR, Zhang GZ, Cai L, Crous PW. Chen Q, et al. Stud Mycol. 2015 Sep;82:137-217. doi: 10.1016/j.simyco.2015.10.003. Epub 2015 Nov 26. Stud Mycol. 2015. PMID: 26955202 Free PMC article.
Recent advances in properties, production, and applications of L-ribulose.
Chen J, Wu H, Zhang W, Mu W. Chen J, et al. Appl Microbiol Biotechnol. 2020 Jul;104(13):5663-5672. doi: 10.1007/s00253-020-10637-5. Epub 2020 May 5. Appl Microbiol Biotechnol. 2020. PMID: 32372201 Review.
Compared with complicated chemical synthesis, the bioconversion method becomes a good alternative approach to L-ribulose production. Generally, the bioconversion of L-ribulose was linked with ribitol, L-arabinose, L-ribose, L-xylulose, and L
Compared with complicated chemical synthesis, the bioconversion method becomes a good alternative approach to L-ribulose production. …
[Enzymatic production of arginine derivatives: a review].
Sun A, Song W, Liu J, Luo Q, Chen X, Liu L. Sun A, et al. Among authors: chen x. Sheng Wu Gong Cheng Xue Bao. 2018 Feb 25;34(2):165-176. doi: 10.13345/j.cjb.170163. Sheng Wu Gong Cheng Xue Bao. 2018. PMID: 29424131 Free article. Review. Chinese.
L-arginine (L-Arg) is an alkaline amino acid that possesses various function groups and acts as an important precursor for useful chemical synthesis. L-Arg derivatives are widely applied in pharmaceutical, food and cosmetic industries. ...
L-arginine (L-Arg) is an alkaline amino acid that possesses various function groups and acts as an important precursor for use
Microbial L-asparaginase for Application in Acrylamide Mitigation from Food: Current Research Status and Future Perspectives.
Jia R, Wan X, Geng X, Xue D, Xie Z, Chen C. Jia R, et al. Among authors: chen c. Microorganisms. 2021 Aug 3;9(8):1659. doi: 10.3390/microorganisms9081659. Microorganisms. 2021. PMID: 34442737 Free PMC article. Review.
L-asparaginase (E.C.3.5.1.1) hydrolyzes L-asparagine to L-aspartic acid and ammonia, which has been widely applied in the pharmaceutical and food industries. ...This highlights the prospects of cost-effective L-asparaginase, thermostable L-aspar
L-asparaginase (E.C.3.5.1.1) hydrolyzes L-asparagine to L-aspartic acid and ammonia, which has been widely applied in t
Two Resveratrol Oligomers Inhibit Cathepsin L Activity to Suppress SARS-CoV-2 Entry.
Wang C, Ye X, Ding C, Zhou M, Li W, Wang Y, You Q, Zong S, Peng Q, Duanmu D, Chen H, Sun B, Qiao J. Wang C, et al. Among authors: chen h. J Agric Food Chem. 2023 Apr 12;71(14):5535-5546. doi: 10.1021/acs.jafc.2c07811. Epub 2023 Mar 30. J Agric Food Chem. 2023. PMID: 36996017
Molecular docking analysis suggested that the oligomers could occupy the active cavity of cathepsin L. The surface plasmon resonance assay showed that the equilibrium dissociation constant (K(D)) values of miyabenol C-cathepsin L and trans-epsilon-viniferin-cathepsi …
Molecular docking analysis suggested that the oligomers could occupy the active cavity of cathepsin L. The surface plasmon resonance …
MDM2-BCL-X(L) PROTACs enable degradation of BCL-X(L) and stabilization of p53.
Chang M, Gao F, Chen J, Gnawali G, Wang W. Chang M, et al. Among authors: chen j. Acta Mater Med. 2022 Jul 21;1(3):333-342. doi: 10.15212/amm-2022-0022. Epub 2022 Aug 30. Acta Mater Med. 2022. PMID: 36910255 Free PMC article.
Herein we report the development of MDM2-BCL-X(L) PROTACs using MDM2 as E3 ligase for degradation of BCL-X(L). Three MDM2-BCL-X(L) PROTACs derived from MDM2 inhibitor Nutlin-3, which can also upregulate p53, and BCL-2/BCL-X(L) inhibitor ABT-263 with di …
Herein we report the development of MDM2-BCL-X(L) PROTACs using MDM2 as E3 ligase for degradation of BCL-X(L). Three MDM2-BCL- …
Sensing, Uptake and Catabolism of L-Phenylalanine During 2-Phenylethanol Biosynthesis via the Ehrlich Pathway in Saccharomyces cerevisiae.
Dai J, Xia H, Yang C, Chen X. Dai J, et al. Among authors: chen x. Front Microbiol. 2021 Feb 25;12:601963. doi: 10.3389/fmicb.2021.601963. eCollection 2021. Front Microbiol. 2021. PMID: 33717002 Free PMC article. Review.
The regulation of L-Phe metabolism in S. cerevisiae is complicated and elaborate. We reviewed current progress on the signal transduction pathways of L-Phe sensing, uptake of extracellular L-Phe and 2-PE synthesis from L-Phe through the Ehrlich pathway …
The regulation of L-Phe metabolism in S. cerevisiae is complicated and elaborate. We reviewed current progress on the signal transduc …
73,796 results
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