Year |
Citation |
Score |
2011 |
Puram SV, Riccio A, Koirala S, Ikeuchi Y, Kim AH, Corfas G, Bonni A. A TRPC5-regulated calcium signaling pathway controls dendrite patterning in the mammalian brain. Genes & Development. 25: 2659-73. PMID 22135323 DOI: 10.1101/Gad.174060.111 |
0.346 |
|
2010 |
Koirala S, Corfas G. Identification of novel glial genes by single-cell transcriptional profiling of Bergmann glial cells from mouse cerebellum. Plos One. 5: e9198. PMID 20169146 DOI: 10.1371/Journal.Pone.0009198 |
0.443 |
|
2009 |
Koirala S, Jin Z, Piao X, Corfas G. GPR56-regulated granule cell adhesion is essential for rostral cerebellar development. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience. 29: 7439-49. PMID 19515912 DOI: 10.1523/Jneurosci.1182-09.2009 |
0.378 |
|
2008 |
Li S, Jin Z, Koirala S, Bu L, Xu L, Hynes RO, Walsh CA, Corfas G, Piao X. GPR56 regulates pial basement membrane integrity and cortical lamination. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience. 28: 5817-26. PMID 18509043 DOI: 10.1523/Jneurosci.0853-08.2008 |
0.31 |
|
2008 |
Wu A, Koirala S, Corfas G, Folch A. Examining the role of neuregulin-1 in synaptogenesis using microfluidics 12th International Conference On Miniaturized Systems For Chemistry and Life Sciences - the Proceedings of Microtas 2008 Conference. 1840-1842. DOI: 10.1016/J.Bpj.2008.12.166 |
0.539 |
|
2006 |
Sardi SP, Murtie J, Koirala S, Patten BA, Corfas G. Presenilin-dependent ErbB4 nuclear signaling regulates the timing of astrogenesis in the developing brain. Cell. 127: 185-97. PMID 17018285 DOI: 10.1016/J.Cell.2006.07.037 |
0.336 |
|
2006 |
Patten BA, Sardi SP, Koirala S, Nakafuku M, Corfas G. Notch1 signaling regulates radial glia differentiation through multiple transcriptional mechanisms. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience. 26: 3102-8. PMID 16554461 DOI: 10.1523/Jneurosci.4829-05.2006 |
0.352 |
|
2005 |
Feng Z, Koirala S, Ko CP. Synapse-glia interactions at the vertebrate neuromuscular junction. The Neuroscientist : a Review Journal Bringing Neurobiology, Neurology and Psychiatry. 11: 503-13. PMID 16151050 DOI: 10.1177/1073858405277409 |
0.732 |
|
2004 |
Koirala S, Ko CP. Pruning an axon piece by piece: a new mode of synapse elimination. Neuron. 44: 578-80. PMID 15541305 DOI: 10.1016/J.Neuron.2004.11.006 |
0.624 |
|
2003 |
Koirala S, Reddy LV, Ko CP. Roles of glial cells in the formation, function, and maintenance of the neuromuscular junction. Journal of Neurocytology. 32: 987-1002. PMID 15034281 DOI: 10.1023/B:Neur.0000020637.71452.3C |
0.725 |
|
2003 |
Reddy LV, Koirala S, Sugiura Y, Herrera AA, Ko CP. Glial cells maintain synaptic structure and function and promote development of the neuromuscular junction in vivo. Neuron. 40: 563-80. PMID 14642280 DOI: 10.1016/S0896-6273(03)00682-2 |
0.725 |
|
2001 |
Yang JF, Cao G, Koirala S, Reddy LV, Ko CP. Schwann cells express active agrin and enhance aggregation of acetylcholine receptors on muscle fibers. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience. 21: 9572-84. PMID 11739568 DOI: 10.1523/Jneurosci.21-24-09572.2001 |
0.618 |
|
2000 |
Koirala S, Qiang H, Ko CP. Reciprocal interactions between perisynaptic Schwann cells and regenerating nerve terminals at the frog neuromuscular junction. Journal of Neurobiology. 44: 343-60. PMID 10942887 DOI: 10.1002/1097-4695(20000905)44:3<343::Aid-Neu5>3.0.Co;2-O |
0.669 |
|
1998 |
Koirala S, Ko CP. Neuron-Glial Interactions. The Sixth Annual University of Southern California Neuroscience Symposium, Los Angeles, November 6, 1998. Cns Drug Reviews. 4: 380-383. PMID 29200234 DOI: 10.1111/J.1527-3458.1998.Tb00078.X |
0.495 |
|
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