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Li A, Mao D, Yoshimura A, Rosen PC, W Martin L, Gallant É, et al.. Multi-Omic Analyses Provide Links between Low-Dose Antibiotic Treatment and Induction of Secondary Metabolism in Burkholderia thailandensis. mBio. 2020 ;11(1).
McAlister GC, Nusinow DP, Jedrychowski MP, Wühr M, Huttlin EL, Erickson BK, et al.. MultiNotch MS3 enables accurate, sensitive, and multiplexed detection of differential expression across cancer cell line proteomes. Anal Chem. 2014 ;86(14):7150-8.
Carcillo JA, Berg RA, Wessel D, Pollack M, Meert K, Hall M, et al. A Multicenter Network Assessment of Three Inflammation Phenotypes in Pediatric Sepsis-Induced Multiple Organ Failure. Pediatr Crit Care Med. 2019 ;.
Moloughney JG, Kim PK, Vega-Cotto NM, Wu C-C, Zhang S, Adlam M, et al. mTORC2 Responds to Glutamine Catabolite Levels to Modulate the Hexosamine Biosynthesis Enzyme GFAT1. Mol Cell. 2016 ;63(5):811-26.
Nofal M, Zhang K, Han S, Rabinowitz JD. mTOR Inhibition Restores Amino Acid Balance in Cells Dependent on Catabolism of Extracellular Protein. Mol Cell. 2017 ;67(6):936-946.e5.
Xie T, Ren R, Zhang Y-yuan, Pang Y, Yan C, Gong X, et al. Molecular mechanism for inhibition of a critical component in the Arabidopsis thaliana abscisic acid signal transduction pathways, SnRK2.6, by protein phosphatase ABI1. J Biol Chem. 2012 ;287(1):794-802.
Deng D, Sun P, Yan C, Ke M, Jiang X, Xiong L, et al. Molecular basis of ligand recognition and transport by glucose transporters. Nature. 2015 ;526(7573):391-6.
Chi X, Gong D, Ren K, Zhou G, Huang G, Lei J, et al. Molecular basis for allosteric regulation of the type 2 ryanodine receptor channel gating by key modulators. Proc Natl Acad Sci U S A. 2019 ;116(51):25575-25582.
Morscher RJ, Ducker GS, Li SHsin-Jung, Mayer JA, Gitai Z, Sperl W, et al. Mitochondrial translation requires folate-dependent tRNA methylation. Nature. 2018 ;554(7690):128-132.
Ron-Harel N, Santos D, Ghergurovich JM, Sage PT, Reddy A, Lovitch SB, et al. Mitochondrial Biogenesis and Proteome Remodeling Promote One-Carbon Metabolism for T Cell Activation. Cell Metab. 2016 ;24(1):104-17.
Ron-Harel N, Santos D, Ghergurovich JM, Sage PT, Reddy A, Lovitch SB, et al. Mitochondrial Biogenesis and Proteome Remodeling Promote One-Carbon Metabolism for T Cell Activation. Cell Metab. 2016 ;24(1):104-17.
Ron-Harel N, Santos D, Ghergurovich JM, Sage PT, Reddy A, Lovitch SB, et al. Mitochondrial Biogenesis and Proteome Remodeling Promote One-Carbon Metabolism for T Cell Activation. Cell Metab. 2016 ;24(1):104-17.
Zong W-X, Rabinowitz JD, White E. Mitochondria and Cancer. Mol Cell. 2016 ;61(5):667-676.
Bradley PH, Gibney PA, Botstein D, Troyanskaya OG, Rabinowitz JD. Minor Isozymes Tailor Yeast Metabolism to Carbon Availability. mSystems. 2019 ;4(1).
Medema MH, Kottmann R, Yilmaz P, Cummings M, Biggins JB, Blin K, et al. Minimum Information about a Biosynthetic Gene cluster. Nat Chem Biol. 2015 ;11(9):625-31.
Medema MH, Kottmann R, Yilmaz P, Cummings M, Biggins JB, Blin K, et al. Minimum Information about a Biosynthetic Gene cluster. Nat Chem Biol. 2015 ;11(9):625-31.
Medema MH, Kottmann R, Yilmaz P, Cummings M, Biggins JB, Blin K, et al. Minimum Information about a Biosynthetic Gene cluster. Nat Chem Biol. 2015 ;11(9):625-31.
Medema MH, Kottmann R, Yilmaz P, Cummings M, Biggins JB, Blin K, et al. Minimum Information about a Biosynthetic Gene cluster. Nat Chem Biol. 2015 ;11(9):625-31.
Sánchez-Cid L, Pons M, Lozano JJosé, Rubio N, Guerra-Rebollo M, Soriano A, et al.. MicroRNA-200, associated with metastatic breast cancer, promotes traits of mammary luminal progenitor cells. Oncotarget. 2017 ;8(48):83384-83406.
Sánchez-Cid L, Pons M, Lozano JJosé, Rubio N, Guerra-Rebollo M, Soriano A, et al.. MicroRNA-200, associated with metastatic breast cancer, promotes traits of mammary luminal progenitor cells. Oncotarget. 2017 ;8(48):83384-83406.
Nelson CM, Gleghorn JP, Pang M-F, Jaslove JM, Goodwin K, Varner VD, et al. Microfluidic chest cavities reveal that transmural pressure controls the rate of lung development. Development. 2017 ;144(23):4328-4335.
Murray LA, Combs AN, Rekapalli P, Cristea IM. Methods for characterizing protein acetylation during viral infection. Methods Enzymol. 2019 ;626:587-620.
Jang C, Chen L, Rabinowitz JD. Metabolomics and Isotope Tracing. Cell. 2018 ;173(4):822-837.
Estrella MA, Du J, Chen L, Rath S, Prangley E, Chitrakar A, et al. The metabolites NADP+ and NADPH are the targets of the circadian protein Nocturnin (Curled). Nat Commun. 2019 ;10(1):2367.
Estrella MA, Du J, Chen L, Rath S, Prangley E, Chitrakar A, et al. The metabolites NADP+ and NADPH are the targets of the circadian protein Nocturnin (Curled). Nat Commun. 2019 ;10(1):2367.