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Items: 43

1.

Toxicity in ALS: TDP-43 modifiers and C9orf72.

St Martin JL, Wang L, Kaprielian Z.

Neurosci Lett. 2020 Jan 18;716:134621. doi: 10.1016/j.neulet.2019.134621. Epub 2019 Nov 11. Review.

PMID:
31726180
2.

Muscle- and Skin-Derived Cues Jointly Orchestrate Patterning of Somatosensory Dendrites.

Díaz-Balzac CA, Rahman M, Lázaro-Peña MI, Martin Hernandez LA, Salzberg Y, Aguirre-Chen C, Kaprielian Z, Bülow HE.

Curr Biol. 2016 Sep 12;26(17):2397. doi: 10.1016/j.cub.2016.07.078. Epub 2016 Aug 18. No abstract available.

3.

Muscle- and Skin-Derived Cues Jointly Orchestrate Patterning of Somatosensory Dendrites.

Díaz-Balzac CA, Rahman M, Lázaro-Peña MI, Martin Hernandez LA, Salzberg Y, Aguirre-Chen C, Kaprielian Z, Bülow HE.

Curr Biol. 2016 Sep 12;26(17):2379-87. doi: 10.1016/j.cub.2016.07.008. Epub 2016 Jul 21. Erratum in: Curr Biol. 2016 Sep 12;26(17):2397.

4.

Floor plate-derived neuropilin-2 functions as a secreted semaphorin sink to facilitate commissural axon midline crossing.

Hernandez-Enriquez B, Wu Z, Martinez E, Olsen O, Kaprielian Z, Maness PF, Yoshida Y, Tessier-Lavigne M, Tran TS.

Genes Dev. 2015 Dec 15;29(24):2617-32. doi: 10.1101/gad.268086.115.

5.

Skin-derived cues control arborization of sensory dendrites in Caenorhabditis elegans.

Salzberg Y, Díaz-Balzac CA, Ramirez-Suarez NJ, Attreed M, Tecle E, Desbois M, Kaprielian Z, Bülow HE.

Cell. 2013 Oct 10;155(2):308-20. doi: 10.1016/j.cell.2013.08.058.

6.

Neuropilin2 regulates the guidance of post-crossing spinal commissural axons in a subtype-specific manner.

Tran TS, Carlin E, Lin R, Martinez E, Johnson JE, Kaprielian Z.

Neural Dev. 2013 Jul 31;8:15. doi: 10.1186/1749-8104-8-15.

7.

Axon sorting within the spinal cord marginal zone via Robo-mediated inhibition of N-cadherin controls spinocerebellar tract formation.

Sakai N, Insolera R, Sillitoe RV, Shi SH, Kaprielian Z.

J Neurosci. 2012 Oct 31;32(44):15377-87. doi: 10.1523/JNEUROSCI.2225-12.2012.

8.

Guidance of longitudinally projecting axons in the developing central nervous system.

Sakai N, Kaprielian Z.

Front Mol Neurosci. 2012 May 4;5:59. doi: 10.3389/fnmol.2012.00059. eCollection 2012.

9.

Motor axon exit from the mammalian spinal cord is controlled by the homeodomain protein Nkx2.9 via Robo-Slit signaling.

Bravo-Ambrosio A, Mastick G, Kaprielian Z.

Development. 2012 Apr;139(8):1435-46. doi: 10.1242/dev.072256. Epub 2012 Mar 7.

10.

Crossing the border: molecular control of motor axon exit.

Bravo-Ambrosio A, Kaprielian Z.

Int J Mol Sci. 2011;12(12):8539-61. doi: 10.3390/ijms12128539. Epub 2011 Nov 29. Review.

11.

C. elegans bicd-1, homolog of the Drosophila dynein accessory factor Bicaudal D, regulates the branching of PVD sensory neuron dendrites.

Aguirre-Chen C, Bülow HE, Kaprielian Z.

Development. 2011 Feb;138(3):507-18. doi: 10.1242/dev.060939.

12.

Leaving the midline: how Robo receptors regulate the guidance of post-crossing spinal commissural axons.

Reeber SL, Kaprielian Z.

Cell Adh Migr. 2009 Jul-Sep;3(3):300-4. Epub 2009 Jul 2.

13.

Manipulating Robo expression in vivo perturbs commissural axon pathfinding in the chick spinal cord.

Reeber SL, Sakai N, Nakada Y, Dumas J, Dobrenis K, Johnson JE, Kaprielian Z.

J Neurosci. 2008 Aug 27;28(35):8698-708. doi: 10.1523/JNEUROSCI.1479-08.2008.

14.

Mis-expression of L1 on pre-crossing spinal commissural axons disrupts pathfinding at the ventral midline.

Imondi R, Jevince AR, Helms AW, Johnson JE, Kaprielian Z.

Mol Cell Neurosci. 2007 Dec;36(4):462-71. Epub 2007 Aug 15.

15.

UNC5C is required for spinal accessory motor neuron development.

Dillon AK, Jevince AR, Hinck L, Ackerman SL, Lu X, Tessier-Lavigne M, Kaprielian Z.

Mol Cell Neurosci. 2007 Jul;35(3):482-9. Epub 2007 May 6.

PMID:
17543537
16.

EphB receptors and ephrin-B3 regulate axon guidance at the ventral midline of the embryonic mouse spinal cord.

Kadison SR, Mäkinen T, Klein R, Henkemeyer M, Kaprielian Z.

J Neurosci. 2006 Aug 30;26(35):8909-14.

17.

The role of floor plate contact in the elaboration of contralateral commissural projections within the embryonic mouse spinal cord.

Kadison SR, Murakami F, Matise MP, Kaprielian Z.

Dev Biol. 2006 Aug 15;296(2):499-513. Epub 2006 Jun 15.

18.

UNC5A promotes neuronal apoptosis during spinal cord development independent of netrin-1.

Williams ME, Lu X, McKenna WL, Washington R, Boyette A, Strickland P, Dillon A, Kaprielian Z, Tessier-Lavigne M, Hinck L.

Nat Neurosci. 2006 Aug;9(8):996-8. Epub 2006 Jul 9.

PMID:
16829956
19.

Distribution of EphB receptors and ephrin-B1 in the developing vertebrate spinal cord.

Jevince AR, Kadison SR, Pittman AJ, Chien CB, Kaprielian Z.

J Comp Neurol. 2006 Aug 10;497(5):734-50.

20.

Molecular control of spinal accessory motor neuron/axon development in the mouse spinal cord.

Dillon AK, Fujita SC, Matise MP, Jarjour AA, Kennedy TE, Kollmus H, Arnold HH, Weiner JA, Sanes JR, Kaprielian Z.

J Neurosci. 2005 Nov 2;25(44):10119-30.

21.
22.

Diversity of contralateral commissural projections in the embryonic rodent spinal cord.

Kadison SR, Kaprielian Z.

J Comp Neurol. 2004 May 10;472(4):411-22.

PMID:
15065116
23.

Oligodendrocyte and astrocyte development in rodents: an in situ and immunohistological analysis during embryonic development.

Liu Y, Wu Y, Lee JC, Xue H, Pevny LH, Kaprielian Z, Rao MS.

Glia. 2002 Oct;40(1):25-43.

PMID:
12237841
24.

Expression of Vema in the developing mouse spinal cord and optic chiasm.

Runko E, Kaprielian Z.

J Comp Neurol. 2002 Sep 23;451(3):289-99.

PMID:
12210140
26.
27.

Axon guidance at the midline choice point.

Kaprielian Z, Runko E, Imondi R.

Dev Dyn. 2001 Jun;221(2):154-81. Review.

28.

Axon guidance at the midline of the developing CNS.

Kaprielian Z, Imondi R, Runko E.

Anat Rec. 2000 Oct 15;261(5):176-97. Review.

30.

Characterization and distribution of a new cell surface marker of neuronal precursors.

Schubert W, Coskun V, Tahmina M, Rao MS, Luskin MB, Kaprielian Z.

Dev Neurosci. 2000;22(1-2):154-66.

31.

Cloning and expression of VEMA: a novel ventral midline antigen in the rat CNS.

Runko E, Wideman C, Kaprielian Z.

Mol Cell Neurosci. 1999 Dec;14(6):428-43.

PMID:
10656251
32.

New cell surface marker of the rat floor plate and notochord.

Zhu Q, Runko E, Imondi R, Milligan T, Kapitula D, Kaprielian Z.

Dev Dyn. 1998 Apr;211(4):314-26.

33.

Association of the tetraspan protein CD9 with integrins on the surface of S-16 Schwann cells.

Hadjiargyrou M, Kaprielian Z, Kato N, Patterson PH.

J Neurochem. 1996 Dec;67(6):2505-13.

PMID:
8931484
34.

Movement of Ca(2+)-ATPase molecules within the sarcoplasmic/endoplasmic reticulum in skeletal muscle.

Kaprielian Z, Robinson SW, Fambrough DM, Kessler PD.

J Cell Sci. 1996 Oct;109 ( Pt 10):2529-37.

35.

FORSE-1: a positionally regulated epitope in the developing rat central nervous system.

Tole S, Kaprielian Z, Ou SK, Patterson PH.

J Neurosci. 1995 Feb;15(2):957-69.

36.

CD9, a major platelet cell surface glycoprotein, is a ROCA antigen and is expressed in the nervous system.

Kaprielian Z, Cho KO, Hadjiargyrou M, Patterson PH.

J Neurosci. 1995 Jan;15(1 Pt 2):562-73.

37.

The molecular basis of retinotectal topography.

Kaprielian Z, Patterson PH.

Bioessays. 1994 Jan;16(1):1-11. Review.

PMID:
7908192
38.
39.

Expression of Ca2(+)-ATPase isoforms in denervated, regenerating, and dystrophic chicken skeletal muscle.

Kaprielian Z, Bandman E, Fambrough DM.

Dev Biol. 1991 Mar;144(1):199-211.

PMID:
1825303
40.

A monoclonal antibody that defines rostrocaudal gradients in the mammalian nervous system.

Suzue T, Kaprielian Z, Patterson PH.

Neuron. 1990 Oct;5(4):421-31.

PMID:
2206530
41.

Identification of a Ca2+-ATPase in cerebellar Purkinje cells.

Kaprielian Z, Campbell AM, Fambrough DM.

Brain Res Mol Brain Res. 1989 Jul;6(1):55-60.

PMID:
2528048
42.

Expression of avian Ca2+-ATPase in cultured mouse myogenic cells.

Karin NJ, Kaprielian Z, Fambrough DM.

Mol Cell Biol. 1989 May;9(5):1978-86.

43.

Expression of fast and slow isoforms of the Ca2+-ATPase in developing chick skeletal muscle.

Kaprielian Z, Fambrough DM.

Dev Biol. 1987 Dec;124(2):490-503.

PMID:
2960578

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