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Hashimoto, H., Kafková, L., Raczkowski, A., Jordan, K. D., Read, L. K., and Debler, E. W. (2019) Structural Basis of Protein Arginine Methyltransferase Activation by a Catalytically Dead Homolog (Prozyme). J Mol Biol. 10.1016/j.jmb.2019.11.002
Harvey, C. M., O'Toole, K. H., Liu, C., Mariano, P., Dunaway-Mariano, D., and Allen, K. N. (2020) Structural Analysis of Binding Determinants of Trehalose-6-phosphate Phosphatase Using Ground-State Complexes. Biochemistry. 59, 3247-3257
Harvey, E. P., Hauseman, Z. J., Cohen, D. T., T Rettenmaier, J., Lee, S., Huhn, A. J., Wales, T. E., Seo, H. - S., Luccarelli, J., Newman, C. E., Guerra, R. M., Bird, G. H., Dhe-Paganon, S., Engen, J. R., Wells, J. A., and Walensky, L. D. (2020) Identification of a Covalent Molecular Inhibitor of Anti-apoptotic BFL-1 by Disulfide Tethering. Cell Chem Biol. 27, 647-656.e6
Harvey, E. P., Seo, H. - S., Guerra, R. M., Bird, G. H., Dhe-Paganon, S., and Walensky, L. D. (2018) Crystal Structures of Anti-apoptotic BFL-1 and Its Complex with a Covalent Stapled Peptide Inhibitor. Structure. 26, 153-160.e4
Harrison, S. A., Naretto, A., Balakrishnan, S., Perera, Y. R., and Chazin, W. J. (2023) Comparative analysis of the physical properties of murine and human S100A7: Insight into why zinc piracy is mediated by human but not murine S100A7. J Biol Chem. 299, 105292
Harrison, O. J., Vendome, J., Brasch, J., Jin, X., Hong, S., Katsamba, P. S., Ahlsen, G., Troyanovsky, R. B., Troyanovsky, S. M., Honig, B., and Shapiro, L. (2012) Nectin ectodomain structures reveal a canonical adhesive interface. Nat Struct Mol Biol. 19, 906-15
Harrison, O. J., Brasch, J., Katsamba, P. S., Ahlsen, G., Noble, A. J., Dan, H., Sampogna, R. V., Potter, C. S., Carragher, B., Honig, B., and Shapiro, L. (2020) Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins.. Cell Rep. 30, 2655-2671.e7
Harrison, O. J., Brasch, J., Lasso, G., Katsamba, P. S., Ahlsen, G., Honig, B., and Shapiro, L. (2016) Structural basis of adhesive binding by desmocollins and desmogleins. Proc Natl Acad Sci U S A. 113, 7160-5
Harris, G. G., Lombardi, P. M., Pemberton, T. A., Matsui, T., Weiss, T. M., Cole, K. E., Köksal, M., Murphy, F. V., L Vedula, S., Chou, W. K. W., Cane, D. E., and Christianson, D. W. (2015) Structural Studies of Geosmin Synthase, a Bifunctional Sesquiterpene Synthase with αα Domain Architecture That Catalyzes a Unique Cyclization-Fragmentation Reaction Sequence.. Biochemistry. 54, 7142-55
Harris, N. C., Born, D. A., Cai, W., Huang, Y., Martin, J., Khalaf, R., Drennan, C. L., and Zhang, W. (2018) Isonitrile Formation by a Non-Heme Iron(II)-Dependent Oxidase/Decarboxylase. Angew Chem Int Ed Engl. 57, 9707-9710
Hari, S. B., Grant, R. A., and Sauer, R. T. (2018) Structural and Functional Analysis of E. coli Cyclopropane Fatty Acid Synthase.. Structure. 10.1016/j.str.2018.06.008
Harding, R. J., Franzoni, I., Mann, M. K., Szewczyk, M. M., Mirabi, B., de Freitas, R. Ferreira, Owens, D. D. G., Ackloo, S., Scheremetjew, A., Juarez-Ornelas, K. A., Sanichar, R., Baker, R. J., Dank, C., Brown, P. J., Barsyte-Lovejoy, D., Santhakumar, V., Schapira, M., Lautens, M., and Arrowsmith, C. H. (2023) Discovery and Characterization of a Chemical Probe Targeting the Zinc-Finger Ubiquitin-Binding Domain of HDAC6. J Med Chem. 66, 10273-10288
Hao, B., Oehlmann, S., Sowa, M. E., J Harper, W., and Pavletich, N. P. (2007) Structure of a Fbw7-Skp1-cyclin E complex: multisite-phosphorylated substrate recognition by SCF ubiquitin ligases. Mol Cell. 26, 131-43
Hao, B., Zheng, N., Schulman, B. A., Wu, G., Miller, J. J., Pagano, M., and Pavletich, N. P. (2005) Structural basis of the Cks1-dependent recognition of p27(Kip1) by the SCF(Skp2) ubiquitin ligase. Mol Cell. 20, 9-19
Hann, Z. S., Ji, C., Olsen, S. K., Lu, X., Lux, M. C., Tan, D. S., and Lima, C. D. (2019) Structural basis for adenylation and thioester bond formation in the ubiquitin E1. Proc Natl Acad Sci U S A. 116, 15475-15484
Hann, Z. S., Metzger, M. B., Weissman, A. M., and Lima, C. D. (2019) Crystal structure of the Schizosaccharomyces pombe U7BR E2-binding region in complex with Ubc7. Acta Crystallogr F Struct Biol Commun. 75, 552-560
Hanke, L., Schmidt, F. I., Knockenhauer, K. E., Morin, B., Whelan, S. Pj, Schwartz, T. U., and Ploegh, H. L. (2017) Vesicular stomatitis virus N protein-specific single-domain antibody fragments inhibit replication. EMBO Rep. 18, 1027-1037
Hanke, L., Knockenhauer, K. E., R Brewer, C., van Diest, E., Schmidt, F. I., Schwartz, T. U., and Ploegh, H. L. (2016) The Antiviral Mechanism of an Influenza A Virus Nucleoprotein-Specific Single-Domain Antibody Fragment. MBio. 10.1128/mBio.01569-16
Hangasky, J. A., Taabazuing, C. Y., Martin, C. B., Eron, S. J., and Knapp, M. J. (2017) The facial triad in the α-ketoglutarate dependent oxygenase FIH: A role for sterics in linking substrate binding to O activation.. J Inorg Biochem. 166, 26-33
Handa, S., Shaw, K. L., and Ghosh, P. (2019) Crystal structure of a Thermus aquaticus diversity-generating retroelement variable protein. PLoS One. 14, e0205618
Handa, S., Paul, B. G., Miller, J. F., Valentine, D. L., and Ghosh, P. (2016) Conservation of the C-type lectin fold for accommodating massive sequence variation in archaeal diversity-generating retroelements. BMC Struct Biol. 16, 13
Hand, T. H., Das, A., Roth, M. O., Smith, C. L., Jean-Baptiste, U. L., and Li, H. (2018) Phosphate Lock Residues of Acidothermus cellulolyticus Cas9 Are Critical to Its Substrate Specificity. ACS Synth Biol. 7, 2908-2917
Hanczyc, P., Mikhailovsky, A., Boyer, D. R., Sawaya, M. R., Heeger, A., and Eisenberg, D. (2018) Ultrafast Time-Resolved Studies on Fluorescein for Recognition Strands Architecture in Amyloid Fibrils. J Phys Chem B. 122, 8-18
Hancock, S. P., Ghane, T., Cascio, D., Rohs, R., Di Felice, R., and Johnson, R. C. (2013) Control of DNA minor groove width and Fis protein binding by the purine 2-amino group. Nucleic Acids Res. 41, 6750-60
Hancock, S. P., Cascio, D., and Johnson, R. C. (2019) Cooperative DNA binding by proteins through DNA shape complementarity. Nucleic Acids Res. 47, 8874-8887

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