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Schumann B, Malaker SAlyse, Wisnovsky SPeter, Debets MFroukje, Agbay AJohn, Fernandez D, Wagner LJan Sarbo, Lin L, Li Z, Choi J et al..  2020.  Bump-and-Hole Engineering Identifies Specific Substrates of Glycosyltransferases in Living Cells. Molecular Cell. 78(5):824-834.e15.
Woods EC, Kai FB, J Barnes M, Pedram K, Pickup MW, Hollander MJ, Weaver VM, Bertozzi CR.  2017.  A bulky glycocalyx fosters metastasis formation by promoting G1 cell cycle progression. eLife. 6
De Niz M, García REscobedo, Ramirez CTerán, Pakowski Y, Abonza Y, Bialy N, Orr VL, Olivera A, Abonza V, Alleva K et al..  2024.  Building momentum through networks: Bioimaging across the Americas. Journal of Microscopy. n/a
Patwardhan A, Brandt R, Butcher SJ, Collinson L, Gault D, Grünewald K, Hecksel C, Huiskonen JT, Iudin, ii A, Jones ML et al..  2017.  Building bridges between cellular and molecular structural biology.. eLife. 6
Franconville R, Beron C, Jayaraman V.  2018.  Building a functional connectome of the central complex.. eLife. 7
Wang S, Matsumoto K, Lish SR, Cartagena-Rivera AX, Yamada KM.  2021.  Budding epithelial morphogenesis driven by cell-matrix versus cell-cell adhesion. Cell. 184:3702-3716.e30.
Scott JA, Williams DW, Truman JW.  2011.  The BTB/POZ zinc finger protein Broad-Z3 promotes dendritic outgrowth during metamorphic remodeling of the peripheral stretch receptor dbd.. Neural Development. 6:39.
Kenworthy CA, Haque N, Liou S-H, Chandris P, Wong V, Dziuba P, Lavis LD, Liu W-L, Singer RH, Coleman RA.  2022.  Bromodomains regulate dynamic targeting of the PBAF chromatin remodeling complex to chromatin hubs.. Biophysical Journal. 121(9):1738-1752.
Ladurner AG, Inouye C, Jain R, Tjian R.  2003.  Bromodomains mediate an acetyl-histone encoded antisilencing function at heterochromatin boundaries.. Molecular Cell. 11(2):365-76.
Zhou X, Riddiford LM.  2002.  Broad specifies pupal development and mediates the ’status quo’ action of juvenile hormone on the pupal-adult transformation in Drosophila and Manduca.. Development . 129(9):2259-69.
Lavis LD, Grimm JB, English BP, Choi H, Muthusamy AK, Mehl BP, Dong P, Brown TA, Lippincott-Schwartz J, Liu Z et al..  2016.  Bright photoactivatable fluorophores for single-molecule imaging.. Nature Methods. 13(12):985-8.
Subach FV, Patterson GH, Renz M, Lippincott-Schwartz J, Verkhusha VV.  2010.  Bright monomeric photoactivatable red fluorescent protein for two-color super-resolution sptPALM of live cells.. Journal of the American Chemical Society. 132(18):6481-91.
Lavis LD, Raines RT.  2008.  Bright ideas for chemical biology.. ACS Chemical Biology. 3:142-55.
Chu J, Oh Y, Sens A, Ataie N, Dana H, Macklin JJ, Laviv T, Welf ES, Dean KM, Zhang F et al..  2016.  A bright cyan-excitable orange fluorescent protein facilitates dual-emission microscopy and enhances bioluminescence imaging in vivo.. Nature Biotechnology. 34(7):760-7.
Lavis LD, Raines RT.  2014.  Bright building blocks for chemical biology.. ACS Chemical Biology. 9(4):855-66.
Deo C, Abdelfattah AS, Bhargava HK, Berro AJ, Falco N, Moeyaert B, Chupanova M, Lavis LD, Schreiter ER.  2020.  Bright and tunable far-red chemigenetic indicators.. bioRxiv.
McKinney SA, Murphy CS, Hazelwood KL, Davidson MW, Looger LL.  2009.  A bright and photostable photoconvertible fluorescent protein.. Nature Methods. 6(2):131-3.
Abdelfattah AS, Kawashima T, Singh A, Novak O, Liu H, Shuai Y, Huang Y-C, Campagnola L, Seeman SC, Yu J et al..  2019.  Bright and photostable chemigenetic indicators for extended in vivo voltage imaging.. Science. 365(6454):699-704.
Zarowny L, Aggarwal A, Rutten VMS, Kolb I, Patel R, Huang H-Y, Chang Y-F, Phan T, Kanyo R, Ahrens MB et al..  2020.  Bright and high-performance genetically encoded Ca indicator based on mNeonGreen fluorescent protein.. ACS Sensors.
Hoeller J, Zhong L, Pachitariu M, Romani S.  2024.  Bridging tuning and invariance with equivariant neuronal representations. bioRxiv.
Lippincott-Schwartz J.  2011.  Bridging structure and process in developmental biology through new imaging technologies.. Developmental cell. 21(1):5-10.
Schnoes AM, Green NH, Nguyen TA, Vale RD, Goodwin SS, Behrman SL.  2024.  Bridging gaps in traditional research training with iBiology Courses.. PLoS Biology. 22(1):e3002458.
Si K, Fiolka R, Cui M.  2012.  Breaking the spatial resolution barrier via iterative sound-light interaction in deep tissue microscopy.. Scientific Reports. 2:748.
Gao L, R Cooks G, Ouyang Z.  2008.  Breaking the pumping speed barrier in mass spectrometry: discontinuous atmospheric pressure interface.. Analytical Chemistry. 80(11):4026-32.
Betzig E, Trautman JK, Harris TD, Weiner JS, Kostelak RL.  1991.  Breaking the diffraction barrier: optical microscopy on a nanometric scale.. Science. 251(5000):1468-70.