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 Davis, A. P.
Right arrow Articles by Capecchi, M. R.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Davis, A. P.
Right arrow Articles by Capecchi, M. R.
Acampora, D., D'Esposito, M., Faiella, A., Pannese, M., Migliaccio, E., Morelli, F., Stornauiolo, A., Nigro, V., Simeone, A. and Boncinelli, E (1989). The human hox gene family. Nucleic Acids Res 17, 10385-10402.[Abstract/Free Full Text]

Akam, M. E (1987). The molecular basis for metameric pattern in the Drosophila embryo. Development 101, 1-22.[Abstract]

Capecchi, M. R., Capecchi, N. E., Hughes, S. H. and Wahl, G. M (1974). Selective degradation of abnormal proteins in mammalian tissue culture cells. Proc. Natl. Acad. Sci. USA 71, 4732-4736.[Abstract/Free Full Text]

Capecchi, M. R (1989). Altering the genome by homologous recombination. Science 244, 1288-1292.[Abstract/Free Full Text]

Capecchi, M. R (1994). Targeted gene replacement. Sci. Am 270, 54-61.

Carpenter, E. M., Goddard, J. M., Chisaka, O., Manley, N. R. and Capecchi, M. R (1993). Loss of Hoxa-1 ( Hox-1.6 ) function results in the reorganization of the murine hindbrain. Development 118, 1063-1075.[Abstract]

Chisaka, O. and Capecchi, M. R (1991). Regionally restricted developmental defects resulting from targeted disruption of the mouse homeobox gene hox-1.5. Nature 350, 473-479.[Medline]

Chisaka, O., Musci, T. S. and Capecchi, M. R (1992). Developmental defects of the ear, cranial nerves and hindbrain resulting from targeted disruption of the mouse homeobox gene Hox-1.6. Nature 355, 516-520.[Medline]

Condie, B. G. and Capecchi, M. R (1993). Mice homozygous for a targeted disruption of Hoxd-3 ( Hox-4.1 ) exhibit anterior transformations of the first and second cervical vertebrae, the atlas and the axis. Development 119, 579-595.[Abstract]

Deng, C. and Capecchi, M. R (1992). Reexamination of gene targeting frequency as a function of the extent of homology between the targeting vector and the target locus. Mol. Cell. Biol 12, 3365-3371.[Abstract/Free Full Text]

Deng, C., Thomas, K. R. and Capecchi, M. R (1993). Location of crossovers during gene targeting with insertion and replacement vectors. Mol. Cell. Biol 13, 2134-2140.[Abstract/Free Full Text]

Dolle, P., Dierich, A., LeMeur, M., Schimmang, T., Schuhbaur, B., Chambon, P. and Duboule, D (1993). Disruption of the Hoxd-13 gene induces localized heterochrony leading to mice with neotenic limbs. Cell 75, 431-441.[Medline]

Dolle, P., Izpis\234a-Belmonte, J. C., Boncinelli, E. and Duboule, D (1991). The Hox-4.8 gene is localized at the 5extremity of the Hox-4 complex and is expressed in the most posterior parts of the body during development. Mech. Dev 36, 3-13.[Medline]

Dolle, P., Izpis\234a-Belmonte, J. C., Falkenstein, H., Renucci, A. and Duboule, D (1989). Coordinate expression of the murine Hox-5 complex homeobox-containing genes during limb pattern formation. Nature 34, 2-.

Duboule, D (1991). Patterning in the vertebral limb. Curr. Opin. Genet. Dev 1, 211-216.[Medline]

Duboule, D (1992). The vertebrate limb: a model system to study the Hox/HOM gene network during development and evolution. BioEssays 14, 375-384.[Medline]

Duboule, D. and Dolle, P (1989). The structural and functional organization of the murine Hox gene family resembles that of Drosophila homeotic genes. EMBO J 8, 1497-1505.[Medline]

Echelard, Y.,Epstein, D. J., St-Jacques, B., Shen, L., Mohler, J., McMahon, J. A. and McMahon, A. P. C (1993). Sonic hedgehog , a member of a family of putative signaling molecules, is implicated in the regulation of CNS polarity. Cell 75, 1417-1430.[Medline]

Gendron-Maguire, M., Mallo, M., Zhang, M. and Gridley, T (1993). Hoxa-2 mutant mice exhibit homeotic transformation of skeletal elements derived from cranial neural crest. Cell 75, 1317-1331.[Medline]

Graham, A., Papalopulu, N. and Krumlauf, R (1989). The murine and Drosophila homeobox gene complexes have common features of organization and expression. Cell 57, 367-378.[Medline]

Green, E. L (1954). Quantitative genetics of skeletal variations in the mouse. I. Crosses between three short-ear strains (P, NB, SEC/2). J. Natl. Cancer Inst 15, 609-627.

Haack, H. and Gruss, P (1993). The establishment of murine Hox-1 expression domains during patterning of the limb. Dev. Biol 157, 410-422.[Medline]

Izpis\234a-Belmonte, J.-C., Falkenstein, H., Dolle, P., Renucci, A. and Duboule, D (1991). Murine genes related to the Drosophila AbdB homeotic gene are sequentially expressed during development of the posterior part of the body. EMBO J 10, 2279-2289.[Medline]

Izpis\234a-Belmonte, J.-C., Tickle, C., Dolle, P., Wolpert, L. and Duboule, D (1991). Expression of the homeobox Hox-4 genes and the specification of position in chick wing development. Nature 350, 585-589.[Medline]

Izpis\234a-Belmonte, J.-C. and Duboule, D (1992). Homeobox genes and pattern formation in the vertebrate limb. Dev. Biol 152, 26-36.[Medline]

Jeannotte, L., Lemieux, M., Charron, J., Poirier, F. and Robertson, E. J (1993). Specification of axial identity in the mouse: role of the Hoxa-5 ( Hox-1.3 ) gene. Genes Dev 7, 2085-2096.[Abstract/Free Full Text]

Kissinger, C. R., Liu, B., Martin-Blanco, E., Kornberg, T. B. and Pabo, C. O (1990). Crystal structure of an engrailed homeodomain-DNA complex at 2.8 \201 resolution: a framework for understanding homeodomain-DNA interactions. Cell 63, 579-590.[Medline]

LeMouellic, H., Lallemand, Y. and Br\236let, P (1992). Homeosis in the mouse induced by a null mutation in the Hox-3.1 gene. Cell 69, 251-264.[Medline]

Lewis, E. B (1978). A gene complex controlling segmentation in Drosophila. Nature 276, 565-570.[Medline]

Lufkin, T., Dierich, A., LeMeur, M., Mark, M. and Chambon, P (1991). Disruption of the Hox-1.6 homeobox gene results in defects in a region corresponding to its rostral domain of expression. Cell 66, 1105-1119.[Medline]

Mansour, S. L., Thomas, K. R. and Capecchi, M. R (1988). Disruption of the proto-oncogene int-2 in mouse embryo-derived stem cells: A general strategy for targeting mutations to nonselectable genes. Nature 336, 348-352.[Medline]

Mansour, S. L., Goddard, J. M. and Capecchi, M. R (1993). Mice homozygous for a targeted disruption of the proto-oncogene int-2 have developmental defects in the tail and inner ear. Development 117, 13-28.[Abstract]

Mark, M., Lufkin, T., Vonesch, J. L., Ruberte, E., Olivo, J.-C., Dolle, P., Gorry, P., Lumsden, A. and Chambon P (1993). Two rhombomeres are altered in Hoxa-1 mutant mice. Development 119, 319-338.[Abstract]

McGinnis, N., Kuziora, M. A. and McGinnis, W (1990). Human Hox-4.2 and Drosophila Deformed encode similar regulatory specificities in Drosophila embryos and larvae. Cell 63, 969-976.[Medline]

McGinnis, W. and Krumlauf, R (1992). Homeobox genes and axial patterning. Cell 68, 283-302.[Medline]

Morgan, B. A., Izpis\234a-Belmonte, J.-C., Duboule, D. and Tabin, C. J (1992). Targeted misexpression of Hox-4.6 in the avian limb bud causes apparent homeotic transformations. Nature 358, 236-239.[Medline]

Nohno, T., Noji, S., Koyama, E., Ohyama, K., Myokai, F., Kuroiwa, A., Saito, T. and Taniguchi, S (1991). Involvement of the Chox-4 chicken homeobox genes in determination of anteroposterior axial polarity during limb development. Cell 64, 1197-1205.[Medline]

Oster, G. F., Shubin, N., Murray, J. D. and Alberch, P (1988). Evolution and morphogenetic rules: the shape of the vertebrate limb in ontogeny and phylogeny. Evolution 42, 862-884.

Otting, G., Qian, Y. Q., Billeter, M., Muller, M., Affolter, M., Gehring, W. J. and Wuthrich, K (1990). Protein--DNA contacts in the structure of a homeodomain--DNA complex determined by nuclear magnetic resonance spectroscopy in solution. EMBO J 9, 3085-3092.[Medline]

Pendleton, J. W., Nagai, B. K., Murtha, M. T. and Ruddle, F. H (1993). Expansion of the Hox gene family and the evolution of chordates. Proc. Natl. Acad. Sci. USA 90, 6300-6304.[Abstract/Free Full Text]

Ramirez-Solis, R., Zheng, H., Whiting, J., Krumlauf, R. and Bradley, A (1993). Hoxb-4 ( Hox-2.6 ) mutant mice show homeotic transformation of a cervical vertebra and defects in the closure of the sternal rudiments. Cell 73, 279-294.[Medline]

Rechsteiner, M (1987). Ubiquitin-mediated pathways for intracellular proteolysis. A. Rev. Cell. Biol 3, 1-30.

Riddle, R., Johnson, R. L., Laufer, E. and Tabin, C (1993). Sonic hedgehog mediates the polarizing activity of the ZPA. Cell 75, 1401-1416.[Medline]

Rijli, F. M., Mark, M., Lakkaraju, S., Dierich, A., Dolle, P. and Chambon, P (1993). A homeotic transformation is generated in the rostral branchial region of the head by disruption of Hoxa-2 , which acts as a selector gene. Cell 75, 1333-1349.[Medline]

Small, K. M. and Potter, S. S (1993). Homeotic transformations and limb defects in Hoxa-11 mutant mice. Genes Dev 7, 2318-2328.[Abstract/Free Full Text]

Tabin, C. J (1991). Retinoids, homeoboxes and growth factors: toward molecular models for limb development. Cell 66, 199-217.[Medline]

Tabin, C. J (1992). Why we have (only) five fingers per hand: Hox genes and the evolution of paired limbs. Development 116, 289-296.[Medline]

Thomas, K. R. and Capecchi, M. R (1987). Site-directed mutagenesis by gene targeting in mouse embryo-derived stem cells. Cell 51, 503-512.[Medline]

Thomas, K. R., Deng, C. and Capecchi, M. R (1992). High-fidelity gene targeting in embryonic stem cells by using sequence replacement vectors. Mol. Cell. Biol 12, 2919-2923.[Abstract/Free Full Text]

Tickle, C., Summerbell, D. and Wolpert, L (1975). Positional signalling and specification of digits in chick limb morphogenesis. Nature 254, 199-202.[Medline]

Yokouchi, Y., Sasaki, H. and Kuroiwa, A (1991). Homeobox gene expression correlated with the bifurcation process of limb cartilage development. Nature 353, 443-445.[Medline]

Zappavigna, V., Sartori, D. and Mavilio, F (1994). Specificity of HOX protein function depends on DNA-protein and protein-protein interactions, both mediated by the homeo domain. Genes Dev 8, 732-744.[Abstract/Free Full Text]




This article has been cited by other articles:


Home page
DevelopmentHome page
R. Raz, S. Stricker, E. Gazzerro, J. L. Clor, F. Witte, H. Nistala, S. Zabski, R. C. Pereira, L. Stadmeyer, X. Wang, et al.
The mutation ROR2W749X, linked to human BDB, is a recessive mutation in the mouse, causing brachydactyly, mediating patterning of joints and modeling recessive Robinow syndrome
Development, May 1, 2008; 135(9): 1713 - 1723.
[Abstract] [Full Text] [PDF]


Home page
J. Med. Genet.Home page
B Dlugaszewska, A Silahtaroglu, C Menzel, S Kubart, M Cohen, S Mundlos, Z Tumer, K Kjaer, U Friedrich, H-H Ropers, et al.
Breakpoints around the HOXD cluster result in various limb malformations
J. Med. Genet., February 1, 2006; 43(2): 111 - 118.
[Abstract] [Full Text] [PDF]


Home page
PhysiologyHome page
R. V. Sampogna and S. K. Nigam
Implications of Gene Networks for Understanding Resilience and Vulnerability in the Kidney Branching Program
Physiology, December 1, 2004; 19(6): 339 - 347.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
W. M. Knosp, V. Scott, H. P. Bachinger, and H. S. Stadler
HOXA13 regulates the expression of bone morphogenetic proteins 2 and 7 to control distal limb morphogenesis
Development, September 15, 2004; 131(18): 4581 - 4592.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. M. Shah, R. V. Sampogna, H. Sakurai, K. T. Bush, and S. K. Nigam
Branching morphogenesis and kidney disease
Development, April 1, 2004; 131(7): 1449 - 1462.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. M. Boulet and M. R. Capecchi
Multiple roles of Hoxa11 and Hoxd11 in the formation of the mammalian forelimb zeugopod
Development, January 15, 2004; 131(2): 299 - 309.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
O. Krebs, C. M. Schreiner, W. J. Scott Jr, S. M. Bell, D. J. Robbins, J. A. Goetz, H. Alt, N. Hawes, E. Wolf, and J. Favor
Replicated anterior zeugopod (raz): a polydactylous mouse mutant with lowered Shh signaling in the limb bud
Development, December 15, 2003; 130(24): 6037 - 6047.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
K. D. Economides and M. R. Capecchi
Hoxb13 is required for normal differentiation and secretory function of the ventral prostate
Development, May 15, 2003; 130(10): 2061 - 2069.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Regul. Integr. Comp. Physiol.Home page
R. Dono
Fibroblast growth factors as regulators of central nervous system development and function
Am J Physiol Regulatory Integrative Comp Physiol, April 1, 2003; 284(4): R867 - R881.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
D. M. Wellik, P. J. Hawkes, and M. R. Capecchi
Hox11 paralogous genes are essential for metanephric kidney induction
Genes & Dev., June 1, 2002; 16(11): 1423 - 1432.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
H. S. Stadler, K. M. Higgins, and M. R. Capecchi
Loss of Eph-receptor expression correlates with loss of cell adhesion and chondrogenic capacity in Hoxa13 mutant limbs
Development, November 1, 2001; 128(21): 4177 - 4188.
[Abstract] [Full Text] [PDF]


Home page
GeneticsHome page
R. M. Clark, P. C. Marker, E. Roessler, A. Dutra, J. C. Schimenti, M. Muenke, and D. M. Kingsley
Reciprocal Mouse and Human Limb Phenotypes Caused by Gain- and Loss-of-Function Mutations Affecting Lmbr1
Genetics, October 1, 2001; 159(2): 715 - 726.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
Y. Zhao and S. S. Potter
Functional specificity of the Hoxa13 homeobox
Development, August 15, 2001; 128(16): 3197 - 3207.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
S. Banerjee-Basu and A. D. Baxevanis
Molecular evolution of the homeodomain family of transcription factors
Nucleic Acids Res., August 1, 2001; 29(15): 3258 - 3269.
[Abstract] [Full Text] [PDF]


Home page
Toxicol PatholHome page
S. Branch and G. Henry-Sam
Altered Hox Gene Expression and Cellular Pathogenesis of 5-Aza-2' -Deoxycytidine-Induced Murine Hindlimb Dysmorphogenesis
Toxicol Pathol, August 1, 2001; 29(5): 501 - 506.
[Abstract] [PDF]


Home page
Biol. Reprod.Home page
L. C. Post and J. W. Innis
Infertility in Adult Hypodactyly Mice Is Associated with Hypoplasia of Distal Reproductive Structures
Biol Reprod, December 1, 1999; 61(6): 1402 - 1408.
[Abstract] [Full Text]


Home page
Proc. Natl. Acad. Sci. USAHome page
C. O. Lovejoy, M. J. Cohn, and T. D. White
Morphological analysis of the mammalian postcranium: A developmental perspective
PNAS, November 9, 1999; 96(23): 13247 - 13252.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
F. Chen and M. R. Capecchi
Paralogous mouse Hox genes, Hoxa9, Hoxb9, and Hoxd9, function together to control development of the mammary gland in response to pregnancy
PNAS, January 19, 1999; 96(2): 541 - 546.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
Y Herault, J Beckers, T Kondo, N Fraudeau, and D Duboule
Genetic analysis of a Hoxd-12 regulatory element reveals global versus local modes of controls in the HoxD complex
Development, January 5, 1998; 125(9): 1669 - 1677.
[Abstract] [PDF]


Home page
Genes Dev.Home page
A. R. Godwin and M. R. Capecchi
Hoxc13 mutant mice lack external hair
Genes & Dev., January 1, 1998; 12(1): 11 - 20.
[Abstract] [Full Text]


Home page
Proc. Natl. Acad. Sci. USAHome page
J. Zakany, C. Fromental-Ramain, X. Warot, and D. Duboule
Regulation of number and size of digits by posterior Hox genes: A dose-dependent mechanism with potential evolutionary implications
PNAS, December 9, 1997; 94(25): 13695 - 13700.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
E. Carpenter, J. Goddard, A. Davis, T. Nguyen, and M. Capecchi
Targeted disruption of Hoxd-10 affects mouse hindlimb development
Development, January 11, 1997; 124(22): 4505 - 4514.
[Abstract] [PDF]


Home page
DevelopmentHome page
V Knezevic, R De Santo, K Schughart, U Huffstadt, C Chiang, K. Mahon, and S Mackem
Hoxd-12 differentially affects preaxial and postaxial chondrogenic branches in the limb and regulates Sonic hedgehog in a positive feedback loop
Development, January 11, 1997; 124(22): 4523 - 4536.
[Abstract] [PDF]


Home page
DevelopmentHome page
C. Peichel, B Prabhakaran, and T. Vogt
The mouse Ulnaless mutation deregulates posterior HoxD gene expression and alters appendicular patterning
Development, January 9, 1997; 124(18): 3481 - 3492.
[Abstract] [PDF]


Home page
DevelopmentHome page
Y Herault, N Fraudeau, J Zakany, and D Duboule
Ulnaless (Ul), a regulatory mutation inducing both loss-of-function and gain-of-function of posterior Hoxd genes
Development, January 9, 1997; 124(18): 3493 - 3500.
[Abstract] [PDF]


Home page
DevelopmentHome page
D. Goff and C. Tabin
Analysis of Hoxd-13 and Hoxd-11 misexpression in chick limb buds reveals that Hox genes affect both bone condensation and growth
Development, January 2, 1997; 124(3): 627 - 636.
[Abstract] [PDF]


Home page
Genes Dev.Home page
M Gerard, J Y Chen, H Gronemeyer, P Chambon, D Duboule, and J Zakany
In vivo targeted mutagenesis of a regulatory element required for positioning the Hoxd-11 and Hoxd-10 expression boundaries.
Genes & Dev., September 15, 1996; 10(18): 2326 - 2334.
[Abstract] [PDF]


Home page
DevelopmentHome page
J. Barrow and M. Capecchi
Targeted disruption of the Hoxb-2 locus in mice interferes with expression of Hoxb-1 and Hoxb-4
Development, January 12, 1996; 122(12): 3817 - 3828.
[Abstract] [PDF]


Home page
DevelopmentHome page
U Grieshammer, G Minowada, J. Pisenti, U. Abbott, and G. Martin
The chick limbless mutation causes abnormalities in limb bud dorsal-ventral patterning: implications for the mechanism of apical ridge formation
Development, January 12, 1996; 122(12): 3851 - 3861.
[Abstract] [PDF]


Home page
DevelopmentHome page
C Fromental-Ramain, X Warot, N Messadecq, M LeMeur, P Dolle, and P Chambon
Hoxa-13 and Hoxd-13 play a crucial role in the patterning of the limb autopod
Development, January 10, 1996; 122(10): 2997 - 3011.
[Abstract] [PDF]


Home page
DevelopmentHome page
J. Goddard, M Rossel, N. Manley, and M. Capecchi
Mice with targeted disruption of Hoxb-1 fail to form the motor nucleus of the VIIth nerve
Development, January 10, 1996; 122(10): 3217 - 3228.
[Abstract] [PDF]


Home page
DevelopmentHome page
D. Duprez, K Kostakopoulou, P. Francis-West, C Tickle, and P. Brickell
Activation of Fgf-4 and HoxD gene expression by BMP-2 expressing cells in the developing chick limb
Development, January 6, 1996; 122(6): 1821 - 1828.
[Abstract] [PDF]


Home page
DevelopmentHome page
C. Nelson, B. Morgan, A. Burke, E Laufer, E DiMambro, L. Murtaugh, E Gonzales, L Tessarollo, L. Parada, and C Tabin
Analysis of Hox gene expression in the chick limb bud
Development, January 5, 1996; 122(5): 1449 - 1466.
[Abstract] [PDF]


Home page
DevelopmentHome page
S. Salser and C Kenyon
A C. elegans Hox gene switches on, off, on and off again to regulate proliferation, differentiation and morphogenesis
Development, January 5, 1996; 122(5): 1651 - 1661.
[Abstract] [PDF]


Home page
DevelopmentHome page
A. Davis and M. Capecchi
A mutational analysis of the 5' HoxD genes: dissection of genetic interactions during limb development in the mouse
Development, January 4, 1996; 122(4): 1175 - 1185.
[Abstract] [PDF]


Home page
DevelopmentHome page
B Favier, F. Rijli, C Fromental-Ramain, V Fraulob, P Chambon, and P Dolle
Functional cooperation between the non-paralogous genes Hoxa-10 and Hoxd-11 in the developing forelimb and axial skeleton
Development, January 2, 1996; 122(2): 449 - 460.
[Abstract] [PDF]


Home page
DevelopmentHome page
C Fromental-Ramain, X Warot, S Lakkaraju, B Favier, H Haack, C Birling, A Dierich, P Doll e, and P Chambon
Specific and redundant functions of the paralogous Hoxa-9 and Hoxd-9 genes in forelimb and axial skeleton patterning
Development, January 2, 1996; 122(2): 461 - 472.
[Abstract] [PDF]


Home page
Genes Dev.Home page
Y Yokouchi, S Nakazato, M Yamamoto, Y Goto, T Kameda, H Iba, and A Kuroiwa
Misexpression of Hoxa-13 induces cartilage homeotic transformation and changes cell adhesiveness in chick limb buds.
Genes & Dev., October 15, 1995; 9(20): 2509 - 2522.
[Abstract] [PDF]


Home page
Genes Dev.Home page
J F Martin, A Bradley, and E N Olson
The paired-like homeo box gene MHox is required for early events of skeletogenesis in multiple lineages.
Genes & Dev., May 15, 1995; 9(10): 1237 - 1249.
[Abstract] [PDF]


Home page
DevelopmentHome page
A. Haramis, J. Brown, and R Zeller
The limb deformity mutation disrupts the SHH/FGF-4 feedback loop and regulation of 5' HoxD genes during limb pattern formation
Development, January 12, 1995; 121(12): 4237 - 4245.
[Abstract] [PDF]


Home page
DevelopmentHome page
A Hardy, M. Richardson, P. Francis-West, C Rodriguez, J. Izpisua-Belmonte, D Duprez, and L Wolpert
Gene expression, polarising activity and skeletal patterning in reaggregated hind limb mesenchyme
Development, January 12, 1995; 121(12): 4329 - 4337.
[Abstract] [PDF]


Home page
DevelopmentHome page
D. Gardiner, B Blumberg, Y Komine, and S. Bryant
Regulation of HoxA expression in developing and regenerating axolotl limbs
Development, January 6, 1995; 121(6): 1731 - 1741.
[Abstract] [PDF]


Home page
DevelopmentHome page
H. Hsieh-Li, D. Witte, M Weinstein, W Branford, H Li, K Small, and S. Potter
Hoxa 11 structure, extensive antisense transcription, and function in male and female fertility
Development, January 5, 1995; 121(5): 1373 - 1385.
[Abstract] [PDF]


Home page
Genes Dev.Home page
D E Rancourt, T Tsuzuki, and M R Capecchi
Genetic interaction between hoxb-5 and hoxb-6 is revealed by nonallelic noncomplementation.
Genes & Dev., January 1, 1995; 9(1): 108 - 122.
[Abstract] [PDF]


Home page
ScienceHome page
D Duboule
How to make a limb?
Science, October 28, 1994; 266(5185): 575 - 576.
[PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
D. Pilbeam
Hominoid systematics: The soft evidence
PNAS, September 26, 2000; 97(20): 10684 - 10686.
[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 Davis, A. P.
Right arrow Articles by Capecchi, M. R.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Davis, A. P.
Right arrow Articles by Capecchi, M. R.