Henry Ho • UC Davis Profiles (original) (raw)

  1. An Efficient Method for Immortalizing Mouse Embryonic Fibroblasts by CRISPR-mediated Deletion of the Tp53 Gene. Bio Protoc. 2025 Jan 20; 15(2):e5159. Srinivasan S, Ho HH. PMID: 39872719; PMCID: PMC11769752.
    View in: PubMed Mentions: 1
  2. Non-canonical WNT5A-ROR signaling: New perspectives on an ancient developmental pathway. Curr Top Dev Biol. 2023; 153:195-227. Konopelski Snavely SE, Srinivasan S, Dreyer CA, Tan J, Carraway KL, Ho HH. PMID: 36967195; PMCID: PMC11042798.
    View in: PubMed Mentions: 5 Fields:
    Translation:Cells
  3. Proteomic analysis identifies the E3 ubiquitin ligase Pdzrn3 as a regulatory target of Wnt5a-Ror signaling. Proc Natl Acad Sci U S A. 2021 06 22; 118(25). Konopelski Snavely SE, Susman MW, Kunz RC, Tan J, Srinivasan S, Cohen MD, Okada K, Lamb H, Choi SS, Karuna EP, Scales MK, Gygi SP, Greenberg ME, Ho HH. PMID: 34135125; PMCID: PMC8237634.
    View in: PubMed Mentions: 10 Fields:
    Translation:AnimalsCells
  4. Agrin-Lrp4-Ror2 signaling regulates adult hippocampal neurogenesis in mice. Elife. 2019 07 03; 8. Zhang H, Sathyamurthy A, Liu F, Li L, Zhang L, Dong Z, Cui W, Sun X, Zhao K, Wang H, Ho HH, Xiong WC, Mei L. PMID: 31268420; PMCID: PMC6650252.
    View in: PubMed Mentions: 25 Fields:
    Translation:AnimalsCells
  5. Oscillatory cortical forces promote three dimensional cell intercalations that shape the murine mandibular arch. Nat Commun. 2019 04 12; 10(1):1703. Tao H, Zhu M, Lau K, Whitley OKW, Samani M, Xiao X, Chen XX, Hahn NA, Liu W, Valencia M, Wu M, Wang X, Fenelon KD, Pasiliao CC, Hu D, Wu J, Spring S, Ferguson J, Karuna EP, Henkelman RM, Dunn A, Huang H, Ho HH, Atit R, Goyal S, Sun Y, Hopyan S. PMID: 30979871; PMCID: PMC6461694.
    View in: PubMed Mentions: 41 Fields:
    Translation:AnimalsCells
  6. Wnt/PCP Signaling Contribution to Carcinoma Collective Cell Migration and Metastasis. Cancer Res. 2019 04 15; 79(8):1719-1729. VanderVorst K, Dreyer CA, Konopelski SE, Lee H, Ho HH, Carraway KL. PMID: 30952630; PMCID: PMC6467734.
    View in: PubMed Mentions: 78 Fields:
    Translation:HumansAnimals
  7. Genetic interactions between Ror2 and Wnt9a, Ror1 and Wnt9a and Ror2 and Ror1: Phenotypic analysis of the limb skeleton and palate in compound mutants. Genes Cells. 2019 Apr; 24(4):307-317. Weissenböck M, Latham R, Nishita M, Wolff LI, Ho HH, Minami Y, Hartmann C. PMID: 30801848; PMCID: PMC7340625.
    View in: PubMed Mentions: 11 Fields:
    Translation:Animals
  8. Whole genome variant association across 100 dogs identifies a frame shift mutation in DISHEVELLED 2 which contributes to Robinow-like syndrome in Bulldogs and related screw tail dog breeds. PLoS Genet. 2018 12; 14(12):e1007850. Mansour TA, Lucot K, Konopelski SE, Dickinson PJ, Sturges BK, Vernau KL, Choi S, Stern JA, Thomasy SM, Döring S, Verstraete FJM, Johnson EG, York D, Rebhun RB, Ho HH, Brown CT, Bannasch DL. PMID: 30521570; PMCID: PMC6303079.
    View in: PubMed Mentions: 45 Fields:
    Translation:HumansAnimalsCells
  9. De novo variant in KIF26B is associated with pontocerebellar hypoplasia with infantile spinal muscular atrophy. Am J Med Genet A. 2018 12; 176(12):2623-2629. Wojcik MH, Okada K, Prabhu SP, Nowakowski DW, Ramsey K, Balak C, Rangasamy S, Brownstein CA, Schmitz-Abe K, Cohen JS, Fatemi A, Shi J, Grant EP, Narayanan V, Ho HH, Agrawal PB. PMID: 30151950; PMCID: PMC6481602.
    View in: PubMed Mentions: 10 Fields:
    Translation:HumansAnimalsCells
  10. Identification of a WNT5A-Responsive Degradation Domain in the Kinesin Superfamily Protein KIF26B. Genes (Basel). 2018 Apr 05; 9(4). Karuna EP, Choi SS, Scales MK, Hum J, Cohen M, Fierro FA, Ho HH. PMID: 29621187; PMCID: PMC5924538.
    View in: PubMed Mentions: 7 Fields:
  11. Kinesin superfamily protein Kif26b links Wnt5a-Ror signaling to the control of cell and tissue behaviors in vertebrates. Elife. 2017 09 08; 6. Susman MW, Karuna EP, Kunz RC, Gujral TS, Cantú AV, Choi SS, Jong BY, Okada K, Scales MK, Hum J, Hu LS, Kirschner MW, Nishinakamura R, Yamada S, Laird DJ, Jao LE, Gygi SP, Greenberg ME, Ho HH. PMID: 28885975; PMCID: PMC5590807.
    View in: PubMed Mentions: 26 Fields:
    Translation:HumansAnimalsCells
  12. The Ror1 receptor tyrosine kinase plays a critical role in regulating satellite cell proliferation during regeneration of injured muscle. J Biol Chem. 2017 09 22; 292(38):15939-15951. Kamizaki K, Doi R, Hayashi M, Saji T, Kanagawa M, Toda T, Fukada SI, Ho HH, Greenberg ME, Endo M, Minami Y. PMID: 28790171; PMCID: PMC5612123.
    View in: PubMed Mentions: 12 Fields:
    Translation:AnimalsCells
  13. Planar cell polarity signaling in the uterus directs appropriate positioning of the crypt for embryo implantation. Proc Natl Acad Sci U S A. 2016 12 13; 113(50):E8079-E8088. Yuan J, Cha J, Deng W, Bartos A, Sun X, Ho HH, Borg JP, Yamaguchi TP, Yang Y, Dey SK. PMID: 27911818; PMCID: PMC5167210.
    View in: PubMed Mentions: 41 Fields:
    Translation:AnimalsCells
  14. Unidirectional Eph/ephrin signaling creates a cortical actomyosin differential to drive cell segregation. J Cell Biol. 2016 Oct 24; 215(2):217-229. O'Neill AK, Kindberg AA, Niethamer TK, Larson AR, Ho HH, Greenberg ME, Bush JO. PMID: 27810913; PMCID: PMC5084648.
    View in: PubMed Mentions: 27 Fields:
    Translation:HumansAnimalsCells
  15. Meiotic onset is reliant on spatial distribution but independent of germ cell number in the mouse ovary. J Cell Sci. 2016 07 01; 129(13):2493-9. Arora R, Abby E, Ross AD, Cantu AV, Kissner MD, Castro V, Ho HY, Livera G, Laird DJ. PMID: 27199373; PMCID: PMC5930833.
    View in: PubMed Mentions: 11 Fields:
    Translation:AnimalsCells
  16. EphB1 and EphB2 intracellular domains regulate the formation of the corpus callosum and anterior commissure. Dev Neurobiol. 2016 Apr; 76(4):405-20. Robichaux MA, Chenaux G, Ho HY, Soskis MJ, Greenberg ME, Henkemeyer M, Cowan CW. PMID: 26148571; PMCID: PMC5473157.
    View in: PubMed Mentions: 10 Fields:
    Translation:AnimalsCells
  17. Appropriate crypt formation in the uterus for embryo homing and implantation requires Wnt5a-ROR signaling. Cell Rep. 2014 Jul 24; 8(2):382-92. Cha J, Bartos A, Park C, Sun X, Li Y, Cha SW, Ajima R, Ho HY, Yamaguchi TP, Dey SK. PMID: 25043182; PMCID: PMC4120233.
    View in: PubMed Mentions: 75 Fields:
    Translation:AnimalsCells
  18. Vangl1 and Vangl2: planar cell polarity components with a developing role in cancer. Endocr Relat Cancer. 2014 Oct; 21(5):R345-56. Hatakeyama J, Wald JH, Printsev I, Ho HY, Carraway KL. PMID: 24981109; PMCID: PMC4332879.
    View in: PubMed Mentions: 46 Fields:
    Translation:HumansAnimalsCells
  19. EphB receptor forward signaling regulates area-specific reciprocal thalamic and cortical axon pathfinding. Proc Natl Acad Sci U S A. 2014 Feb 11; 111(6):2188-93. Robichaux MA, Chenaux G, Ho HY, Soskis MJ, Dravis C, Kwan KY, Šestan N, Greenberg ME, Henkemeyer M, Cowan CW. PMID: 24453220; PMCID: PMC3926086.
    View in: PubMed Mentions: 27 Fields:
    Translation:AnimalsCells
  20. An autocrine Wnt5a-Ror signaling loop mediates sympathetic target innervation. Dev Biol. 2013 May 01; 377(1):79-89. Ryu YK, Collins SE, Ho HY, Zhao H, Kuruvilla R. PMID: 23454479; PMCID: PMC3774606.
    View in: PubMed Mentions: 45 Fields:
    Translation:AnimalsCells
  21. A chemical genetic approach reveals distinct EphB signaling mechanisms during brain development. Nat Neurosci. 2012 Dec; 15(12):1645-54. Soskis MJ, Ho HY, Bloodgood BL, Robichaux MA, Malik AN, Ataman B, Rubin AA, Zieg J, Zhang C, Shokat KM, Sharma N, Cowan CW, Greenberg ME. PMID: 23143520; PMCID: PMC3509236.
    View in: PubMed Mentions: 26 Fields:
    Translation:HumansAnimalsCells
  22. Wnt5a-Ror-Dishevelled signaling constitutes a core developmental pathway that controls tissue morphogenesis. Proc Natl Acad Sci U S A. 2012 Mar 13; 109(11):4044-51. Ho HY, Susman MW, Bikoff JB, Ryu YK, Jonas AM, Hu L, Kuruvilla R, Greenberg ME. PMID: 22343533; PMCID: PMC3306699.
    View in: PubMed Mentions: 158 Fields:
    Translation:AnimalsCells
  23. EphB-mediated degradation of the RhoA GEF Ephexin5 relieves a developmental brake on excitatory synapse formation. Cell. 2010 Oct 29; 143(3):442-55. Margolis SS, Salogiannis J, Lipton DM, Mandel-Brehm C, Wills ZP, Mardinly AR, Hu L, Greer PL, Bikoff JB, Ho HY, Soskis MJ, Sahin M, Greenberg ME. PMID: 21029865; PMCID: PMC2967209.
    View in: PubMed Mentions: 149 Fields:
    Translation:HumansAnimalsCells
  24. Regulation of motor neuron specification by phosphorylation of neurogenin 2. Neuron. 2008 Apr 10; 58(1):65-77. Ma YC, Song MR, Park JP, Henry Ho HY, Hu L, Kurtev MV, Zieg J, Ma Q, Pfaff SL, Greenberg ME. PMID: 18400164; PMCID: PMC2587148.
    View in: PubMed Mentions: 74 Fields:
    Translation:HumansAnimalsCells
  25. Brain-specific phosphorylation of MeCP2 regulates activity-dependent Bdnf transcription, dendritic growth, and spine maturation. Neuron. 2006 Oct 19; 52(2):255-69. Zhou Z, Hong EJ, Cohen S, Zhao WN, Ho HY, Schmidt L, Chen WG, Lin Y, Savner E, Griffith EC, Hu L, Steen JA, Weitz CJ, Greenberg ME. PMID: 17046689; PMCID: PMC3962021.
    View in: PubMed Mentions: 502 Fields:
    Translation:AnimalsCells
  26. Cdc42 and PI(4,5)P2-induced actin assembly in Xenopus egg extracts. Methods Enzymol. 2006; 406:156-73. Lebensohn AM, Ma L, Ho HY, Kirschner MW. PMID: 16472657.
    View in: PubMed Mentions: 8 Fields:
    Translation:AnimalsCells
  27. In vitro reconstitution of cdc42-mediated actin assembly using purified components. Methods Enzymol. 2006; 406:174-90. Ho HY, Rohatgi R, Lebensohn AM, Kirschner MW. PMID: 16472658.
    View in: PubMed Mentions: 9 Fields:
    Translation:HumansAnimalsCells
  28. The NF2 tumor suppressor Merlin and the ERM proteins interact with N-WASP and regulate its actin polymerization function. J Biol Chem. 2005 Apr 01; 280(13):12517-22. Manchanda N, Lyubimova A, Ho HY, James MF, Gusella JF, Ramesh N, Snapper SB, Ramesh V. PMID: 15699051.
    View in: PubMed Mentions: 15 Fields:
    Translation:HumansAnimalsCells
  29. Toca-1 mediates Cdc42-dependent actin nucleation by activating the N-WASP-WIP complex. Cell. 2004 Jul 23; 118(2):203-16. Ho HY, Rohatgi R, Lebensohn AM, Li J, Gygi SP, Kirschner MW. PMID: 15260990.
    View in: PubMed Mentions: 210 Fields:
    Translation:HumansAnimalsCells
  30. Erk/Src phosphorylation of cortactin acts as a switch on-switch off mechanism that controls its ability to activate N-WASP. Mol Cell Biol. 2004 Jun; 24(12):5269-80. Martinez-Quiles N, Ho HY, Kirschner MW, Ramesh N, Geha RS. PMID: 15169891; PMCID: PMC419870.
    View in: PubMed Mentions: 139 Fields:
    Translation:HumansAnimalsCells
  31. Purification and architecture of the ubiquitous Wave complex. Proc Natl Acad Sci U S A. 2004 Mar 30; 101(13):4379-83. Gautreau A, Ho HY, Li J, Steen H, Gygi SP, Kirschner MW. PMID: 15070726; PMCID: PMC384755.
    View in: PubMed Mentions: 122 Fields:
    Translation:HumansCells
  32. CR16 forms a complex with N-WASP in brain and is a novel member of a conserved proline-rich actin-binding protein family. Proc Natl Acad Sci U S A. 2001 Sep 25; 98(20):11306-11. Ho HY, Rohatgi R, Ma L, Kirschner MW. PMID: 11553796; PMCID: PMC58725.
    View in: PubMed Mentions: 27 Fields:
    Translation:HumansAnimalsCells
  33. Nck and phosphatidylinositol 4,5-bisphosphate synergistically activate actin polymerization through the N-WASP-Arp2/3 pathway. J Biol Chem. 2001 Jul 13; 276(28):26448-52. Rohatgi R, Nollau P, Ho HY, Kirschner MW, Mayer BJ. PMID: 11340081.
    View in: PubMed Mentions: 153 Fields:
    Translation:AnimalsCells
  34. Mechanism of N-WASP activation by CDC42 and phosphatidylinositol 4, 5-bisphosphate. J Cell Biol. 2000 Sep 18; 150(6):1299-310. Rohatgi R, Ho HY, Kirschner MW. PMID: 10995436; PMCID: PMC2150699.
    View in: PubMed Mentions: 231 Fields:
    Translation:AnimalsCells

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This graph shows the number and percent of publications by field. Fields are based on how the National Library of Medicine (NLM) classifies the publications' journals and might not represent the specific topics of the publications. Note that an individual publication can be assigned to more than one field. As a result, the publication counts in this graph might add up to more than the number of publications the person has written. To see the data as text, click here.

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