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Connection

Hening Lin to Humans

This is a "connection" page, showing publications Hening Lin has written about Humans.
Connection Strength

1.404
  1. PARP7 inhibition stabilizes STAT1/STAT2 and relieves experimental autoimmune encephalomyelitis in mice. Cell Rep. 2025 Aug 26; 44(8):116130.
    View in: PubMed
    Score: 0.030
  2. SMAD2 S-palmitoylation promotes its linker region phosphorylation and TH17 cell differentiation in a mouse model of multiple sclerosis. Sci Signal. 2025 May 27; 18(888):eadr2008.
    View in: PubMed
    Score: 0.030
  3. SIRT2-mediated ACSS2 K271 deacetylation suppresses lipogenesis under nutrient stress. Elife. 2025 May 07; 13.
    View in: PubMed
    Score: 0.029
  4. A Mitochondria-Targeting SIRT3 Inhibitor with Activity against Diffuse Large B Cell Lymphoma. J Med Chem. 2024 09 12; 67(17):15428-15437.
    View in: PubMed
    Score: 0.028
  5. MAVS Cys508 palmitoylation promotes its aggregation on the mitochondrial outer membrane and antiviral innate immunity. Proc Natl Acad Sci U S A. 2024 Aug 20; 121(34):e2403392121.
    View in: PubMed
    Score: 0.028
  6. GS-441524-Diphosphate-Ribose Derivatives as Nanomolar Binders and Fluorescence Polarization Tracers for SARS-CoV-2 and Other Viral Macrodomains. ACS Chem Biol. 2024 05 17; 19(5):1093-1105.
    View in: PubMed
    Score: 0.027
  7. Sirt2 inhibition improves gut epithelial barrier integrity and protects mice from colitis. Proc Natl Acad Sci U S A. 2024 Apr 30; 121(18):e2319833121.
    View in: PubMed
    Score: 0.027
  8. NLRP3 Cys126 palmitoylation by ZDHHC7 promotes inflammasome activation. Cell Rep. 2024 04 23; 43(4):114070.
    View in: PubMed
    Score: 0.027
  9. Protein lipidation in cancer: mechanisms, dysregulation and emerging drug targets. Nat Rev Cancer. 2024 Apr; 24(4):240-260.
    View in: PubMed
    Score: 0.027
  10. Interactome Analysis Identifies the Role of BZW2 in Promoting Endoplasmic Reticulum-Mitochondria Contact and Mitochondrial Metabolism. Mol Cell Proteomics. 2024 Feb; 23(2):100709.
    View in: PubMed
    Score: 0.027
  11. A Fluorescence Polarization Assay for Macrodomains Facilitates the Identification of Potent Inhibitors of the SARS-CoV-2 Macrodomain. ACS Chem Biol. 2023 05 19; 18(5):1200-1207.
    View in: PubMed
    Score: 0.026
  12. Christopher T. Walsh: A Prolific Scientist, Effective Academic Leader, and Responsive Mentor. ACS Chem Biol. 2023 04 21; 18(4):668-670.
    View in: PubMed
    Score: 0.025
  13. Astrocyte Elevated Gene-1 Cys75 S-Palmitoylation by ZDHHC6 Regulates Its Biological Activity. Biochemistry. 2023 01 17; 62(2):543-553.
    View in: PubMed
    Score: 0.025
  14. The Acyl-CoA Specificity of Human Lysine Acetyltransferase KAT2A. Biochemistry. 2022 09 06; 61(17):1874-1882.
    View in: PubMed
    Score: 0.024
  15. A Proteomic Approach Identifies Isoform-Specific and Nucleotide-Dependent RAS Interactions. Mol Cell Proteomics. 2022 08; 21(8):100268.
    View in: PubMed
    Score: 0.024
  16. Long-chain fatty acyl coenzyme A inhibits NME1/2 and regulates cancer metastasis. Proc Natl Acad Sci U S A. 2022 03 15; 119(11):e2117013119.
    View in: PubMed
    Score: 0.024
  17. NAD+-consuming enzymes in immune defense against viral infection. Biochem J. 2021 12 10; 478(23):4071-4092.
    View in: PubMed
    Score: 0.023
  18. High-Throughput Enzyme Assay for Screening Inhibitors of the ZDHHC3/7/20 Acyltransferases. ACS Chem Biol. 2021 08 20; 16(8):1318-1324.
    View in: PubMed
    Score: 0.023
  19. Pharmacological Advantage of SIRT2-Selective versus pan-SIRT1-3 Inhibitors. ACS Chem Biol. 2021 07 16; 16(7):1266-1275.
    View in: PubMed
    Score: 0.023
  20. Understanding the Function of Mammalian Sirtuins and Protein Lysine Acylation. Annu Rev Biochem. 2021 06 20; 90:245-285.
    View in: PubMed
    Score: 0.022
  21. Protein cysteine palmitoylation in immunity and inflammation. FEBS J. 2021 12; 288(24):7043-7059.
    View in: PubMed
    Score: 0.022
  22. Garcinol Is an HDAC11 Inhibitor. ACS Chem Biol. 2020 11 20; 15(11):2866-2871.
    View in: PubMed
    Score: 0.021
  23. A STAT3 palmitoylation cycle promotes TH17 differentiation and colitis. Nature. 2020 10; 586(7829):434-439.
    View in: PubMed
    Score: 0.021
  24. N-Myristoyltransferase as a Glycine and Lysine Myristoyltransferase in Cancer, Immunity, and Infections. ACS Chem Biol. 2020 07 17; 15(7):1747-1758.
    View in: PubMed
    Score: 0.021
  25. TiPARP forms nuclear condensates to degrade HIF-1a and suppress tumorigenesis. Proc Natl Acad Sci U S A. 2020 06 16; 117(24):13447-13456.
    View in: PubMed
    Score: 0.021
  26. NMT1 and NMT2 are lysine myristoyltransferases regulating the ARF6 GTPase cycle. Nat Commun. 2020 02 26; 11(1):1067.
    View in: PubMed
    Score: 0.021
  27. SIRT2 and Lysine Fatty Acylation Regulate the Activity of RalB and Cell Migration. ACS Chem Biol. 2019 09 20; 14(9):2014-2023.
    View in: PubMed
    Score: 0.020
  28. A Glycoconjugated SIRT2 Inhibitor with Aqueous Solubility Allows Structure-Based Design of SIRT2 Inhibitors. ACS Chem Biol. 2019 08 16; 14(8):1802-1810.
    View in: PubMed
    Score: 0.020
  29. Activity-Guided Design of HDAC11-Specific Inhibitors. ACS Chem Biol. 2019 07 19; 14(7):1393-1397.
    View in: PubMed
    Score: 0.020
  30. Novel Lysine-Based Thioureas as Mechanism-Based Inhibitors of Sirtuin 2 (SIRT2) with Anticancer Activity in a Colorectal Cancer Murine Model. J Med Chem. 2019 04 25; 62(8):4131-4141.
    View in: PubMed
    Score: 0.019
  31. Updates on the epigenetic roles of sirtuins. Curr Opin Chem Biol. 2019 08; 51:18-29.
    View in: PubMed
    Score: 0.019
  32. HDAC11 regulates type I interferon signaling through defatty-acylation of SHMT2. Proc Natl Acad Sci U S A. 2019 03 19; 116(12):5487-5492.
    View in: PubMed
    Score: 0.019
  33. A Small-Molecule SIRT2 Inhibitor That Promotes K-Ras4a Lysine Fatty-Acylation. ChemMedChem. 2019 04 03; 14(7):744-748.
    View in: PubMed
    Score: 0.019
  34. Fluorogenic Assays for the Defatty-Acylase Activity of Sirtuins. Methods Mol Biol. 2019; 2009:129-136.
    View in: PubMed
    Score: 0.019
  35. Global Profiling of Sirtuin Deacylase Substrates Using a Chemical Proteomic Strategy and Validation by Fluorescent Labeling. Methods Mol Biol. 2019; 2009:137-147.
    View in: PubMed
    Score: 0.019
  36. Direct Comparison of SIRT2 Inhibitors: Potency, Specificity, Activity-Dependent Inhibition, and On-Target Anticancer Activities. ChemMedChem. 2018 09 19; 13(18):1890-1894.
    View in: PubMed
    Score: 0.018
  37. Protein Lipidation: Occurrence, Mechanisms, Biological Functions, and Enabling Technologies. Chem Rev. 2018 02 14; 118(3):919-988.
    View in: PubMed
    Score: 0.018
  38. HPLC-Based Enzyme Assays for Sirtuins. Methods Mol Biol. 2018; 1813:225-234.
    View in: PubMed
    Score: 0.018
  39. SIRT2 and lysine fatty acylation regulate the transforming activity of K-Ras4a. Elife. 2017 12 14; 6.
    View in: PubMed
    Score: 0.018
  40. S-Palmitoylation of Junctional Adhesion Molecule C Regulates Its Tight Junction Localization and Cell Migration. J Biol Chem. 2017 03 31; 292(13):5325-5334.
    View in: PubMed
    Score: 0.017
  41. SIRT7 Is an RNA-Activated Protein Lysine Deacylase. ACS Chem Biol. 2017 01 20; 12(1):300-310.
    View in: PubMed
    Score: 0.017
  42. Identifying the functional contribution of the defatty-acylase activity of SIRT6. Nat Chem Biol. 2016 08; 12(8):614-20.
    View in: PubMed
    Score: 0.016
  43. Lessons learned from a SIRT2-selective inhibitor. Oncotarget. 2016 04 26; 7(17):22971-2.
    View in: PubMed
    Score: 0.016
  44. The Substrate Specificity of Sirtuins. Annu Rev Biochem. 2016 Jun 02; 85:405-29.
    View in: PubMed
    Score: 0.016
  45. Lysine fatty acylation promotes lysosomal targeting of TNF-a. Sci Rep. 2016 Apr 15; 6:24371.
    View in: PubMed
    Score: 0.016
  46. A SIRT2-Selective Inhibitor Promotes c-Myc Oncoprotein Degradation and Exhibits Broad Anticancer Activity. Cancer Cell. 2016 Mar 14; 29(3):297-310.
    View in: PubMed
    Score: 0.016
  47. SIRT7 Is Activated by DNA and Deacetylates Histone H3 in the Chromatin Context. ACS Chem Biol. 2016 Mar 18; 11(3):742-7.
    View in: PubMed
    Score: 0.016
  48. An improved fluorogenic assay for SIRT1, SIRT2, and SIRT3. Org Biomol Chem. 2016 Feb 21; 14(7):2186-90.
    View in: PubMed
    Score: 0.015
  49. Sirtuins in epigenetic regulation. Chem Rev. 2015 Mar 25; 115(6):2350-75.
    View in: PubMed
    Score: 0.014
  50. Thiomyristoyl peptides as cell-permeable Sirt6 inhibitors. Org Biomol Chem. 2014 Oct 14; 12(38):7498-502.
    View in: PubMed
    Score: 0.014
  51. Sirtuin inhibitors as anticancer agents. Future Med Chem. 2014 May; 6(8):945-66.
    View in: PubMed
    Score: 0.014
  52. Dph7 catalyzes a previously unknown demethylation step in diphthamide biosynthesis. J Am Chem Soc. 2014 Apr 30; 136(17):6179-82.
    View in: PubMed
    Score: 0.014
  53. Revealing CD38 cellular localization using a cell permeable, mechanism-based fluorescent small-molecule probe. J Am Chem Soc. 2014 Apr 16; 136(15):5656-63.
    View in: PubMed
    Score: 0.014
  54. A fluorogenic assay for screening Sirt6 modulators. Org Biomol Chem. 2013 Aug 28; 11(32):5213-6.
    View in: PubMed
    Score: 0.013
  55. SIRT6 regulates TNF-a secretion through hydrolysis of long-chain fatty acyl lysine. Nature. 2013 Apr 04; 496(7443):110-3.
    View in: PubMed
    Score: 0.013
  56. Detecting sirtuin-catalyzed deacylation reactions using ³²P-labeled NAD and thin-layer chromatography. Methods Mol Biol. 2013; 1077:179-89.
    View in: PubMed
    Score: 0.013
  57. Chemogenomic approach identified yeast YLR143W as diphthamide synthetase. Proc Natl Acad Sci U S A. 2012 Dec 04; 109(49):19983-7.
    View in: PubMed
    Score: 0.012
  58. Identification of ADP-ribosylation sites of CD38 mutants by precursor ion scanning mass spectrometry. Anal Biochem. 2013 Feb 15; 433(2):218-26.
    View in: PubMed
    Score: 0.012
  59. Protein lysine acylation and cysteine succination by intermediates of energy metabolism. ACS Chem Biol. 2012 Jun 15; 7(6):947-60.
    View in: PubMed
    Score: 0.012
  60. Thiosuccinyl peptides as Sirt5-specific inhibitors. J Am Chem Soc. 2012 Feb 01; 134(4):1922-5.
    View in: PubMed
    Score: 0.012
  61. Sirt5 is a NAD-dependent protein lysine demalonylase and desuccinylase. Science. 2011 Nov 11; 334(6057):806-9.
    View in: PubMed
    Score: 0.012
  62. Plasmodium falciparum Sir2A preferentially hydrolyzes medium and long chain fatty acyl lysine. ACS Chem Biol. 2012 Jan 20; 7(1):155-9.
    View in: PubMed
    Score: 0.012
  63. Clickable NAD analogues for labeling substrate proteins of poly(ADP-ribose) polymerases. J Am Chem Soc. 2010 Jul 14; 132(27):9363-72.
    View in: PubMed
    Score: 0.011
  64. Investigating the ADP-ribosyltransferase activity of sirtuins with NAD analogues and 32P-NAD. Biochemistry. 2009 Apr 07; 48(13):2878-90.
    View in: PubMed
    Score: 0.010
  65. Mechanism-based small molecule probes for labeling CD38 on live cells. J Am Chem Soc. 2009 Feb 11; 131(5):1658-9.
    View in: PubMed
    Score: 0.010
  66. Nicotinamide adenine dinucleotide: beyond a redox coenzyme. Org Biomol Chem. 2007 Aug 21; 5(16):2541-54.
    View in: PubMed
    Score: 0.009
  67. Photoaffinity Labeling Reveals a Role for the Unusual Triply Acylated Phospholipid N-Acylphosphatidylethanolamine in Lactate Homeostasis. J Am Chem Soc. 2025 Sep 17; 147(37):33386-33394.
    View in: PubMed
    Score: 0.008
  68. Biochemistry and regulation of histone lysine L-lactylation. Nat Rev Mol Cell Biol. 2026 Feb; 27(2):95-109.
    View in: PubMed
    Score: 0.008
  69. Myristoylation of TMEM106B by NMT1/2 regulates TMEM106B trafficking and turnover. J Biol Chem. 2025 07; 301(7):110322.
    View in: PubMed
    Score: 0.007
  70. ATP-release pannexin channels are gated by lysophospholipids. Elife. 2025 May 01; 14.
    View in: PubMed
    Score: 0.007
  71. STAT3 palmitoylation initiates a positive feedback loop that promotes the malignancy of hepatocellular carcinoma cells in mice. Sci Signal. 2023 12 05; 16(814):eadd2282.
    View in: PubMed
    Score: 0.007
  72. Simultaneous inhibition of Sirtuin 3 and cholesterol homeostasis targets acute myeloid leukemia stem cells by perturbing fatty acid ß-oxidation and inducing lipotoxicity. Haematologica. 2023 09 01; 108(9):2343-2357.
    View in: PubMed
    Score: 0.007
  73. IGF2BP2 promotes cancer progression by degrading the RNA transcript encoding a v-ATPase subunit. Proc Natl Acad Sci U S A. 2022 Nov 08; 119(45):e2200477119.
    View in: PubMed
    Score: 0.006
  74. Reversible lysine fatty acylation of an anchoring protein mediates adipocyte adrenergic signaling. Proc Natl Acad Sci U S A. 2022 02 15; 119(7).
    View in: PubMed
    Score: 0.006
  75. Altered succinylation of mitochondrial proteins, APP and tau in Alzheimer's disease. Nat Commun. 2022 01 10; 13(1):159.
    View in: PubMed
    Score: 0.006
  76. Attenuation of NLRP3 Inflammasome Activation by Indirubin-Derived PROTAC Targeting HDAC6. ACS Chem Biol. 2021 12 17; 16(12):2746-2751.
    View in: PubMed
    Score: 0.006
  77. Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival. Blood Cancer Discov. 2022 01; 3(1):50-65.
    View in: PubMed
    Score: 0.006
  78. Indirubin Derivatives as Dual Inhibitors Targeting Cyclin-Dependent Kinase and Histone Deacetylase for Treating Cancer. J Med Chem. 2021 10 28; 64(20):15280-15296.
    View in: PubMed
    Score: 0.006
  79. Emerging roles of Sirtuin 2 in cardiovascular diseases. FASEB J. 2021 10; 35(10):e21841.
    View in: PubMed
    Score: 0.006
  80. High-Throughput Screening Identifies Ascorbyl Palmitate as a SIRT2 Deacetylase and Defatty-Acylase Inhibitor. ChemMedChem. 2021 11 19; 16(22):3484-3494.
    View in: PubMed
    Score: 0.006
  81. Cysteine derivatives as acetyl lysine mimics to inhibit zinc-dependent histone deacetylases for treating cancer. Eur J Med Chem. 2021 Dec 05; 225:113799.
    View in: PubMed
    Score: 0.006
  82. Pharmacological and genetic perturbation establish SIRT5 as a promising target in breast cancer. Oncogene. 2021 03; 40(9):1644-1658.
    View in: PubMed
    Score: 0.005
  83. Substrate-Dependent Modulation of SIRT2 by a Fluorescent Probe, 1-Aminoanthracene. Biochemistry. 2020 10 13; 59(40):3869-3878.
    View in: PubMed
    Score: 0.005
  84. Non-oncogene Addiction to SIRT3 Plays a Critical Role in Lymphomagenesis. Cancer Cell. 2019 06 10; 35(6):916-931.e9.
    View in: PubMed
    Score: 0.005
  85. Loss of Sirtuin 1 Alters the Secretome of Breast Cancer Cells by Impairing Lysosomal Integrity. Dev Cell. 2019 05 06; 49(3):393-408.e7.
    View in: PubMed
    Score: 0.005
  86. Probing the requirement for CD38 in retinoic acid-induced HL-60 cell differentiation with a small molecule dimerizer and genetic knockout. Sci Rep. 2017 12 12; 7(1):17406.
    View in: PubMed
    Score: 0.004
  87. Deacylation Mechanism by SIRT2 Revealed in the 1'-SH-2'-O-Myristoyl Intermediate Structure. Cell Chem Biol. 2017 Mar 16; 24(3):339-345.
    View in: PubMed
    Score: 0.004
  88. SIRT2 Reverses 4-Oxononanoyl Lysine Modification on Histones. J Am Chem Soc. 2016 09 28; 138(38):12304-7.
    View in: PubMed
    Score: 0.004
  89. Chemical genetic discovery of PARP targets reveals a role for PARP-1 in transcription elongation. Science. 2016 Jul 01; 353(6294):45-50.
    View in: PubMed
    Score: 0.004
  90. High-Resolution Metabolomics with Acyl-CoA Profiling Reveals Widespread Remodeling in Response to Diet. Mol Cell Proteomics. 2015 Jun; 14(6):1489-500.
    View in: PubMed
    Score: 0.004
  91. Efficient demyristoylase activity of SIRT2 revealed by kinetic and structural studies. Sci Rep. 2015 Feb 23; 5:8529.
    View in: PubMed
    Score: 0.004
  92. The bicyclic intermediate structure provides insights into the desuccinylation mechanism of human sirtuin 5 (SIRT5). J Biol Chem. 2012 Aug 17; 287(34):28307-14.
    View in: PubMed
    Score: 0.003
  93. ATRA-induced HL-60 myeloid leukemia cell differentiation depends on the CD38 cytosolic tail needed for membrane localization, but CD38 enzymatic activity is unnecessary. Exp Cell Res. 2011 Apr 15; 317(7):910-9.
    View in: PubMed
    Score: 0.003
  94. Covalent and noncovalent intermediates of an NAD utilizing enzyme, human CD38. Chem Biol. 2008 Oct 20; 15(10):1068-78.
    View in: PubMed
    Score: 0.002
Connection Strength

The connection strength for concepts is the sum of the scores for each matching publication.

Publication scores are based on many factors, including how long ago they were written and whether the person is a first or senior author.