spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Starr, D. A.
Right arrow Articles by Goldberg, M. L.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Starr, D. A.
Right arrow Articles by Goldberg, M. L.
Adams, M. D., et al (1995). Initial assessment of human gene diversity and expression patterns based upon 83 million nucleotides of cDNA sequence. Nature 377, 3-174.[Medline]

Altschul, S. F., Gish, W., Miller, W., Myers, E. W. and Lipman, D. J (1990). Basic local alignment search tool. J. Mol. Biol 215, 403-410.[Medline]

Bai, C. and Elledge, S. J (1996). Gene identification using the two-hybrid system. Meth. Enzymol 273, 331-347.[Medline]

Chalfie, M., Yuan, T., Euskirchen, G., Ward, W. W. and Prasher, D. C (1994). Green fluorescent protein as a marker for gene expression. Science 263, 802-805.[Abstract/Free Full Text]

Chan, G. K., Schaar, B. T. and Yen, T. J (1998). Characterization of the kinetochore binding domain of CENP-E reveals interactions with the kinetochore proteins CENP-F and hBUBR1. J. Cell Biol 143, 49-63.[Abstract/Free Full Text]

Compton, D. A., Yen, T. J. and Cleveland, D. W (1991). Identification of novel centromere/kinetochore-associated proteins using monoclonal antibodies generated against human mitotic chromosome scaffolds. J. Cell Biol 112, 1083-1097.[Abstract/Free Full Text]

Cooke, C. A., Schaar, B., Yen, T. J. and Earnshaw, W. C (1997). Localization of CENP-E in the fibrous corona and outer plate of mammalian kinetochores from prometaphase through anaphase. Chromosoma 106, 446-455.[Medline]

Craig, J. M., Earnshaw, W. C. and Vagnarelli, P (1999). Mammalian centromeres: DNA sequence, protein composition, and role in cell cycle progression. Exp. Cell Res 246, 249-262.[Medline]

Desai, A., Verma, S., Mitchison, T. J. and Walczek, C. E (1999). Kin I kinesins are microtubule-destabilizing enzymes. Cell 96, 69-78.[Medline]

du Sart, D., Cancilla, M. R., Earle, E., Mao, J. I., Saffery, R., Tainton, K. M., Kalitsis, P., Martyn, J., Barry, A. E., Choo, K. H. A (1997). A functional neo-centromere formed through activation of a latent human centromere and consisting of non-alpha-satellite DNA. Nature Genet 16, 144-153.[Medline]

Echeverri, C. J., Paschal, B. M., Vaughan, K. T. and Vallee, R. B (1996). Molecular characterization of the 50-kD subunit of Dynactin reveals function for the complex in chromosome alignment and spindle organization during mitosis. J. Cell Biol 132, 617-633.[Abstract/Free Full Text]

Faulkner, N. E., Vig, B., Echeverri, C. J., Wordeman, L. and Vallee, R. B (1998). Localization of motor-related proteins and associated complexes to active, but not inactive, centromeres. Hum. Mol. Genet 7, 671-677.[Abstract/Free Full Text]

Fields, S. and Song, O (1989). A novel genetic system to detect protein-protein interactions. Nature 340, 245-246.[Medline]

Gorbsky, G. J., Kallio, M., Daum, J. R., Topper, L. M (1999). Protein dynamics at the kinetochore: cell cycle regulation of the metaphase to anaphase transition. FASEB J 13, 2-.

Hardwick, K. G. and Murray, A. W (1995). Mad1p, a phosphoprotein component of the spindle assembly checkpoint in budding yeast. J. Cell Biol 131, 709-720.[Abstract/Free Full Text]

He, D., Zeng, C., Woods, K., Zhong, L., Turner, D., Busch, R. K., Brinkley, B. R. and Busch, H (1998). CENP-G: a new centromeric protein that is associated with the alpha-1 satellite DNA subfamily. Chromosoma 107, 189-197.[Medline]

Hengen, P. N (1997). False positives from the yeast two-hybrid system. Trends Biochem. Sci 22, 33-34.[Medline]

Hudson, D. F., Fowler, K. J., Earle, E., Saffery, R., Kalitsis, P., Trowell, H., Hill, J., Wreford, N. G., de Krester, D. M., Cancilla, M. R., Howman, E., Hill, L., Cutts, S. M., Irvine, D. V. and Choo, K. H. A (1998). Centromere protein B null mice are mitotically and meiotically normal but have lower body and testis weights. J. Cell Biol 141, 309-319.[Abstract/Free Full Text]

Jablonski, S. A., Chan, G. K. T., Cooke, C. A., Earnshaw, W. C. and Yen, T. J (1998). The hBUB1 and hBUBR1 kinases sequentially assemble onto kinetochores during prophase with hBUBR1 concentrating at the kinetochore plates in mitosis. Chromosoma 107, 386-396.[Medline]

Jeppesen, P., Mitchell, A., Turner, B. and Perry, P (1992). Antibodies to defined histone epitopes reveal variations in chromatin conformation and underacetylation of centric heterochromatin in human metaphase chromosomes. Chromosoma 101, 322-332.[Medline]

Kalitsis, P., Fowler, K. J., Earle, E., Hill, J. and Choo, K. H. A (1998). Targeted disruption of mouse centromere protein C leads to mitotic disarray and early embryo death. Proc. Nat. Acad. Sci. USA 95, 1136-1141.[Abstract/Free Full Text]

Karki, S., LaMonte, B. and Holzbaur, E. L (1998). Characterization of the p22 subunit of dynactin reveals the localization of cytoplasmic dynein and dynactin to the midbody of dividing cells. J. Cell Biol 142, 1023-1034.[Abstract/Free Full Text]

Li, X. and Nicklas, R. B (1995). Mitotic forces control a cell cycle checkpoint. Nature 373, 630-632.[Medline]

Liao, H., Winkfein, R. J., Mack, G., Rattner, J. B. and Yen, T. J (1995). CENP-F is a protein of the nuclear matrix that assembles onto kinetochores at late G2and is rapidly degraded after mitosis. J. Cell Biol 130, 507-518.[Abstract/Free Full Text]

Lombillo, V. A., Nislow, C., Yen, T. J., Gelfand, V. I. and McIntosh, J. R (1995). Antibodies to the kinesin motor domain and CENP-E inhibit microtubule depolymerization-dependent motion of chromosomes in vitro. J. Cell Biol 128, 107-115.[Abstract/Free Full Text]

Lupas, A., Van Dyke, M. and Stock, J (1991). Predicting coiled coils from protein sequences. Science 252, 1162-1164.[Medline]

Mackay, A. M., Eckley, D. M., Chue, C. and Earnshaw, W. C (1993). Molecular analysis of the INCENPs (inner centromere proteins): separate domains are required for association with microtubules during interphase and with the central spindle during anaphase. J. Cell Biol._Fb_123._Fb_Maney, T., Hunter, A. W., Wagenbach, M. and Wordeman, L. (1998). Mitotic centromere-associated kinesin is important for anaphase chromosome segregation. J. Cell Biol 142, 787-801.[Abstract/Free Full Text]

Matsumoto-Taniura, N., Priollet, F., Monroe, R., Gerace, L. and Westendorf, J. M (1996). Identification of novel M phase phosphoproteins by expression cloning. Mol. Biol. Cell 7, 1455-1469.[Abstract]

Moroi, Y., Peebles, M. J., Fritzler, J., Steigerwald, J. and Tan., E. M (1980). Autoantibody to centromere (kinetochore) in scleroderma sera. Proc. Nat. Acad. Sci USA 77, 1627-1631.[Abstract/Free Full Text]

Odgren, P. R., Harvie, L. W. and Fey, E. G (1996). Phylogenetic occurrence of coiled coil proteins: implications for tissue structure in metazoa via a coiled coil tissue matrix. Proteins 24, 467-484.[Medline]

Page S. L., Earnshaw, W. C., Choo, K. H. A. and Shaffer, L.G (1995). Further evidence that CENP-C is a necessary component of active centromeres: studies of a dic(X; 15) with simultaneous immunofluorescence and FISH. Hum. Mol. Genet 4, 289-294.[Abstract/Free Full Text]

Parry, D. A. and Steinert, P. M (1992). Intermediate filament structure. Curr. Opin. Cell Biol 4, 94-98.[Medline]

Pfarr, C. M., Coue, M., Grissom, P. M., Hays, T. S., Porter, M. E. and McIntosh, J. R (1990). Cytoplasmic dynein is localized to kinetochores during mitosis. Nature 345, 263-265.[Medline]

Pierre, P., Scheel, J., Rickard, J. E. and Kreis, T. E (1992). CLIP-170 links endocytic vesicles to microtubules. Cell 70, 887-900.[Medline]

Pluta, A. F., Saitoh, N., Goldberg, I. and Earnshaw, W. C (1992). Identification of a subdomain of CENP-B that is necessary and sufficient for localization to the human centromere. J. Cell Biol 116, 1081-1093.[Abstract/Free Full Text]

Pluta, A. F., Mackay, A. M., Ainsztein, A. M., Goldberg, I. G. and Earnshaw, W. C (1995). The centromere: hub of chromosomal activities. Science 270, 1591-1594.[Abstract/Free Full Text]

Rattner, J. B., Hendzel, M. J., Furbee, C. S., Muller, M. T. and Bazett-Jones, D. P (1996). Topoisomerase II alpha is associated with the mammalian centromere in a cell cycle-and species-specific manner and is required for proper centromere/kinetochore structure. J. Cell Biol 134, 1097-1107.[Abstract/Free Full Text]

Rieder, C. L (1982). The formation, structure and composition of the mammalian kinetochore and kinetochore fiber. Int. Rev. Cytol 79, 1-58.[Medline]

Rieder, C. L., Cole, R. W., Khodjakov, A. and Sluder, G (1995). The checkpoint delaying anaphase in response to chromosome monoorientation is mediated by inhibitory signal produced by unattached kinetochores. J. Cell Biol 130, 941-948.[Abstract/Free Full Text]

Saffery, R., Irvine, D. V., Griffiths, B., Kalitsis, P., Wordeman, L. and Choo, K. H. A (2000). Human centromeres and neocentromeres show identical distribution patterns of >20 functionally important kinetochore-associated proteins. Hum. Mol. Genet 9, 175-185.[Abstract/Free Full Text]

Saitoh, H., Tomkiel, J., Cooke, C. A., Ratrie III, H., Maurer, M., Rothfield, N. F. and Earnshaw, W. C (1992). CENP-C, an autoantigen in scleroderma, is a component of the human inner kinetochore plate. Cell 70, 115-125.[Medline]

Scaerou, F., Aguilera, I., Saunders, R., Kane, N., Blottiere, L., Karess, R (1999). The rough deal protein is a new kinetochore component required for accurate chromosome segregation in Drosophila. J. Cell Sci 112, 3757-3768.[Abstract]

Scharr, B. T., Chan, G. K., Maddox, P., Salmon, E. D. and Yen, T. J (1997). CENP-E function at kinetochores is essential for chromosome alignment. J. Cell Biol 139, 1373-1382.[Abstract/Free Full Text]

Shamu, C. and Murray, A (1992). Sister chromatid separation in frog egg extracts requires DNA topoisomerase II activity during anaphase. J. Cell Biol 117, 921-934.[Abstract/Free Full Text]

Skibbens R. V. and Hieter, P (1998). Kinetochores and the checkpoint mechanism that monitors for defects in the chromosome segregation machinery. Annu. Rev. Genet 32, 307-337.[Medline]

Smith, D. A., Baker, B. S. and Gatti, M (1985). Mutations in genes controlling essential mitotic functions in Drosophila melanogaster. Genetics 110, 647-670.[Abstract/Free Full Text]

Starr, D. A., Williams, B. C., Li, Z., Etemad-Moghadam, B., Dawe, R. K. and Goldberg, M. L (1997). Conservation of the centromere/kinetochore protein ZW10. J. Cell Biol 138, 1289-1301.[Abstract/Free Full Text]

Starr, D. A., Williams, B. C., Hays, T. S. and Goldberg, M. L (1998). ZW10 helps recruit dynactin and dynein to the kinetochore. J. Cell Biol 142, 763-774.[Abstract/Free Full Text]

Steuer, E. R., Wordeman, L., Schroer, T. A. and Sheetz, M. P (1990). Localization of cytoplasmic dynein to mitotic spindles and kinetochores. Nature 345, 266-268.[Medline]

Stukenberg, P. T., Lustig, K. D., McGarry, T. J., Kuang, J. and Kirschner, M. W (1997). Systematic identification of mitotic phosphoproteins. Curr. Biol 7, 338-348.[Medline]

Sugata, N., Munekata, E. and Todokoro, K (1999). Characterization of a novel kinetochore protein, CENP-H. J Biol. Chem 274, 27343-27346.[Abstract/Free Full Text]

Sullivan, K. F. and Glass, C. A (1991). CENP-B is a highly conserved mammalian centromere protein with homology to the helix-loop-helix family of proteins. Chromosoma 100, 360-370.[Medline]

Sullivan, K. F., Hechenberger, M. and Masri, K (1994). Human CENP-A contains a histone H3 related histone fold domain that is required for targeting to the centromere. J. Cell Biol 127, 581-592.[Abstract/Free Full Text]

Sullivan, B. A. and Schwartz, S (1995). Identification of centromeric antigens in dicentric Robertsonian translocations: CENP-C and CENP-E are necessary components of functional centromeres. Hum. Mol. Genet 4, 2189-2197.[Abstract/Free Full Text]

Tomkiel, J., Cooke, C. A., Saitoh, H., Bernat, R. L. and Earnshaw, W. C (1994). CENP-C is required for maintaining proper kinetochore size and for a timely transition to anaphase. J. Cell Biol 125, 531-545.[Abstract/Free Full Text]

Voullaire, L. E., Slater, H. R., Petrovic, V., Choo, K. H. A (1993). A functional marker centromere with no detectable alpha-satellite, satellite III, or CENP-B protein: activation of a latent centromere?. Am. J. Hum. Genet 52, 1153-1163.[Medline]

Voullaire, L. E., Saffery, R., Davies, J., Earle, E., Kalitsis, P., Slater, H. R., Irvine, D. V., Choo, K. H. A (1999). Trisomy 20p resulting from inverted duplication and neocentromere formation. Am. J. Med. Genet 85, 403-408.[Medline]

Walczak, C. E., Mitchison, T. J. and Desai, A (1996). XKCM1: a Xenopus kinesin-related protein that regulates microtubule dynamics during mitotic spindle assembly. Cell 84, 37-47.[Medline]

Westendorf, J. M., Rao, P. N. and Gerace, L (1994). Cloning of cDNAs for M phase phosphoproteins recognized by the MPM2 monoclonal antibody and determination of the phosphorylated epitope. Proc. Nat. Acad. Sci. USA 91, 714-718.[Abstract/Free Full Text]

Williams, B. C., Karr, T. L., Montgomery, J. M. and Goldberg, M. L (1992). The Drosophila l(1)zw10 gene product, required for accurate mitotic chromosome segregation, is redistributed at anaphase onset. J. Cell Biol 118, 759-773.[Abstract/Free Full Text]

Williams, B. C. and Goldberg, M. L (1994). Determinants of Drosophila zw10 protein localization and function. J. Cell Sci 107, 785-798.[Abstract]

Williams, B. C., Gatti, M. and Goldberg, M. L (1996). Bipolar spindle attachments affect redistributions of ZW10, a Drosophila centromere/kinetochore component required for accurate chromosome segregation. J. Cell Biol 134, 1127-1140.[Abstract/Free Full Text]

Williams, B. C., Murphy, T. D., Goldberg, M. L. and Karpen, G. H (1998). Neocentromere activity of structurally acentric mini-chromosomes in Drosophila. Nature Genet 18, 30-37.[Medline]

Wood, K. W., Sakowicz, R., Goldstein, L. S. B. and Cleveland, D. W (1997). CENP-E is a plus end-directed kinetochore motor required for metaphase chromosome alignment. Cell 91, 357-366.[Medline]

Wordeman, L., Steuer, E. R., Sheetz, M. P. and Mitchison, T (1991). Chemical subdomains within the kinetochore domain of isolated CHO mitotic chromosomes. J. Cell Biol 114, 285-294.[Abstract/Free Full Text]

Wordeman, L. and Mitchison, T. J (1995). Identification and partial characterization of mitotic centromere-associated kinesin, a kinesin related protein that associates with centromeres during mitosis. J. Cell Biol 128, 95-105.[Abstract/Free Full Text]

Yao, X., Anderson, K. L. and Cleveland, D. W (1997). The microtuble-dependent motor centromere-associated protein E (CENP-E) is an integral component of kinetochores to spindle microtubules. J. Cell Biol 139, 435-447.[Abstract/Free Full Text]

Yen, T. J., Compton, D. A., Wise, D., Zinkowski, R. P., Brinkley, B. R., Earnshaw, W. C. and Cleveland, D. W (1991). CENP-E, a novel human centromere-associated protein required for progression from metaphase to anaphase. EMBO J 10, 1245-1254.[Medline]

Zachariae, W. and Nasmyth, K (1999). Whose end is destruction: cell division and the anaphase-promoting complex. Genes Dev 13, 2039-2058.[Free Full Text]




This article has been cited by other articles:


Home page
Genes Dev.Home page
R. Gassmann, A. Essex, J.-S. Hu, P. S. Maddox, F. Motegi, A. Sugimoto, S. M. O'Rourke, B. Bowerman, I. McLeod, J. R. Yates III, et al.
A new mechanism controlling kinetochore-microtubule interactions revealed by comparison of two dynein-targeting components: SPDL-1 and the Rod/Zwilch/Zw10 complex
Genes & Dev., September 1, 2008; 22(17): 2385 - 2399.
[Abstract] [Full Text] [PDF]


Home page
GENES CELLSHome page
M. Inoue, K. Arasaki, A. Ueda, T. Aoki, and M. Tagaya
N-terminal region of ZW10 serves not only as a determinant for localization but also as a link with dynein function.
Genes Cells, August 1, 2008; 13(8): 905 - 914.
[Abstract] [Full Text] [PDF]


Home page
JCBHome page
J. K. Famulski, L. Vos, X. Sun, and G. Chan
Stable hZW10 kinetochore residency, mediated by hZwint-1 interaction, is essential for the mitotic checkpoint
J. Cell Biol., February 6, 2008; 180(3): 507 - 520.
[Abstract] [Full Text] [PDF]


Home page
JCBHome page
S. A. Stehman, Y. Chen, R. J. McKenney, and R. B. Vallee
NudE and NudEL are required for mitotic progression and are involved in dynein recruitment to kinetochores
J. Cell Biol., August 9, 2007; 178(4): 583 - 594.
[Abstract] [Full Text] [PDF]


Home page
Mol. Biol. CellHome page
M. J. Emanuele, M. L. McCleland, D. L. Satinover, and P. T. Stukenberg
Measuring the Stoichiometry and Physical Interactions between Components Elucidates the Architecture of the Vertebrate Kinetochore
Mol. Biol. Cell, October 1, 2005; 16(10): 4882 - 4892.
[Abstract] [Full Text] [PDF]


Home page
JCBHome page
G. J.P.L. Kops, Y. Kim, B. A.A. Weaver, Y. Mao, I. McLeod, J. R. Yates III, M. Tagaya, and D. W. Cleveland
ZW10 links mitotic checkpoint signaling to the structural kinetochore
J. Cell Biol., April 11, 2005; 169(1): 49 - 60.
[Abstract] [Full Text] [PDF]


Home page
Clin. Chem.Home page
G. D. Sgarlato, C. L. Eastman, and H. H. Sussman
Panel of Genes Transcriptionally Up-regulated in Squamous Cell Carcinoma of the Cervix Identified by Representational Difference Analysis, Confirmed by Macroarray, and Validated by Real-Time Quantitative Reverse Transcription-PCR
Clin. Chem., January 1, 2005; 51(1): 27 - 34.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
H. Wang, X. Hu, X. Ding, Z. Dou, Z. Yang, A. W. Shaw, M. Teng, D. W. Cleveland, M. L. Goldberg, L. Niu, et al.
Human Zwint-1 Specifies Localization of Zeste White 10 to Kinetochores and Is Essential for Mitotic Checkpoint Signaling
J. Biol. Chem., December 24, 2004; 279(52): 54590 - 54598.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
I. M. Cheeseman, S. Niessen, S. Anderson, F. Hyndman, J. R. Yates III, K. Oegema, and A. Desai
A conserved protein network controls assembly of the outer kinetochore and its ability to sustain tension
Genes & Dev., September 15, 2004; 18(18): 2255 - 2268.
[Abstract] [Full Text] [PDF]


Home page
JCOHome page
H. Endoh, S. Tomida, Y. Yatabe, H. Konishi, H. Osada, K. Tajima, H. Kuwano, T. Takahashi, and T. Mitsudomi
Prognostic Model of Pulmonary Adenocarcinoma by Expression Profiling of Eight Genes As Determined by Quantitative Real-Time Reverse Transcriptase Polymerase Chain Reaction
J. Clin. Oncol., March 1, 2004; 22(5): 811 - 819.
[Abstract] [Full Text] [PDF]


Home page
Plant Physiol.Home page
A. Rose, S. Manikantan, S. J. Schraegle, M. A. Maloy, E. A. Stahlberg, and I. Meier
Genome-Wide Identification of Arabidopsis Coiled-Coil Proteins and Establishment of the ARABI-COIL Database
Plant Physiology, March 1, 2004; 134(3): 927 - 939.
[Abstract] [Full Text] [PDF]


Home page
Hum Mol GenetHome page
A. Saxena, L. H. Wong, P. Kalitsis, E. Earle, L. G. Shaffer, and K.H. A. Choo
Poly(ADP-ribose) polymerase 2 localizes to mammalian active centromeres and interacts with PARP-1, Cenpa, Cenpb and Bub3, but not Cenpc
Hum. Mol. Genet., September 15, 2002; 11(19): 2319 - 2329.
[Abstract] [Full Text] [PDF]


Home page
J. Virol.Home page
G. J. Poggioli, R. L. DeBiasi, R. Bickel, R. Jotte, A. Spalding, G. L. Johnson, and K. L. Tyler
Reovirus-Induced Alterations in Gene Expression Related to Cell Cycle Regulation
J. Virol., February 22, 2002; 76(6): 2585 - 2594.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
A. A. Van Hooser, I. I. Ouspenski, H. C. Gregson, D. A. Starr, T. J. Yen, M. L. Goldberg, K. Yokomori, W. C. Earnshaw, K. F. Sullivan, and B. R. Brinkley
Specification of kinetochore-forming chromatin by the histone H3 variant CENP-A
J. Cell Sci., January 10, 2001; 114(19): 3529 - 3542.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
F. Scaerou, D. A. Starr, F. Piano, O. Papoulas, R. E. Karess, and M. L. Goldberg
The ZW10 and Rough Deal checkpoint proteins function together in a large, evolutionarily conserved complex targeted to the kinetochore
J. Cell Sci., January 9, 2001; 114(17): 3103 - 3114.
[Abstract] [Full Text] [PDF]


Home page
Hum Mol GenetHome page
N. Sugata, S. Li, W. C. Earnshaw, T. J. Yen, K. Yoda, H. Masumoto, E. Munekata, P. E. Warburton, and K. Todokoro
Human CENP-H multimers colocalize with CENP-A and CENP-C at active centromere-kinetochore complexes
Hum. Mol. Genet., November 1, 2000; 9(19): 2919 - 2926.
[Abstract] [Full Text] [PDF]


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Starr, D. A.
Right arrow Articles by Goldberg, M. L.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Starr, D. A.
Right arrow Articles by Goldberg, M. L.