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1 single LRP6 mutant mice as well as LRP6/Lef1 double mutant mice.
2 , resulting in an increased life span of the double mutant mice.
3 ons were significantly increased in lungs of double mutant mice.
4 he retinal pigment epithelium and choroid of double mutant mice.
5 ice, it failed to do so in CB1(-/-)/CB2(-/-) double mutant mice.
6 e Itsn genes, we generated Itsn1, Itsn2, and double mutant mice.
7 sceral pathology was similar in the NP-C and double mutant mice.
8 P-C disease was substantially reduced in the double mutant mice.
9 macrophages was not reduced significantly in double mutant mice.
10 to normal levels in osteoclasts derived from double mutant mice.
11 ant mice were augmented in DBH (-/-)/APP/PS1 double mutant mice.
12 al projections in Brn3a and Brn3b single and double mutant mice.
13 of tooth morphogenesis in Msx1(-/-)Osr2(-/-) double mutant mice.
14 replication stress in vivo, we used Hus1/Atm double mutant mice.
15 edly ameliorated in Ptpn11(D61G/+)/Gab2(-/-) double mutant mice.
16 loss of Fgf8a, we generated Fgf17 and Fgf8a double mutant mice.
17 MEN1, we characterized p18-Men1 and p27-Men1 double mutant mice.
18 DSBs, we generated Fancd2(-/-)/Prkdc(sc/sc) double mutant mice.
19 to sustain molecular rhythmicity in mPer1/2 double-mutant mice.
20 ytokine withdrawal was also increased in the double-mutant mice.
21 ssin mRNA levels are increased in CRFR2- and double-mutant mice.
22 we generated and analyzed Nkx2.5 and Nkx2.6 double-mutant mice.
23 pulmonary inflammation characteristic of E/P double-mutant mice.
24 e, but these were less extensive than in E/P double-mutant mice.
25 of these transcription factors by analyzing double-mutant mice.
26 errantly long telomeres were observed in the double-mutant mice.
27 protective effects are lost in Atg16L1/Nod2 double-mutant mice.
28 ifespan was extended in Atg7 cKO; SOD1(G93A) double-mutant mice.
29 g were boosted in tumor tissues of Apc Olfm4 double-mutant mice.
30 fovea in NPHP6-LCA, we generated rd16;Nrl-/- double-mutant mice.
31 knock-in mice was also markedly decreased in double-mutant mice.
32 of mice deficient in either SLRP gene and in double-mutant mice.
33 eletion of Oxtr in Oxtr(-/-):Avpr1alpha(-/-) double-mutant mice.
34 ation, in the renal tubules of Tsc1 and rpS6 double-mutant mice.
35 n parkin null alpha-synuclein-overexpressing double-mutant mice.
36 tex was aggravated in Fmr1(-/y); Cyfip2(+/-) double-mutant mice.
37 2 g at 6 mo) and the Acox1-deficient (ob/ob) double-mutant mice (23.8+/-4.6 g at 6 mo), the ob/ob mic
38 ibited few RGC axon guidance defects, but in double mutant mice a large additional chiasm developed a
42 cochlear sensory epithelium were present in double mutant mice and cochlear stereocilia exhibited a
44 MEN1, we characterized p18-Men1 and p27-Men1 double mutant mice and showed that p18, but not p27, fun
45 is dependent on CDK4, we generated p18; Cdk4 double-mutant mice and examined the organs and tissues w
46 (-/-)-mutant mice and Xpc(-/-)G1-G3Terc(-/-) double-mutant mice and exposed them to UV radiation.
48 CRF mRNA levels are elevated in CRFR1- and double-mutant mice, and urocortin III and vasopressin mR
58 urrence of skin and pulmonary disease in E/P double-mutant mice but not E/L/P triple-mutant mice sugg
59 d thymic apoptosis was suppressed in Atm/p53 double-mutant mice but not in Atm/p21 double mutants, de
61 during early-life (pre-puberty, CRHOEdev) in double-mutant mice (Camk2a-rtta2 x tetO-Crh) and tested
63 taneous testicular tumors in XPC-/- TrpS3-/- double mutant mice compared with XPC+/+ Trp53-/- mice.
68 The coat-color phenotype of young homozygous double-mutant mice deficient in subunits of BLOC-3 (HPS1
70 urned to normal in Rasgrp1(Anaef)Mtor(chino) double-mutant mice, demonstrating that increased mTOR ac
76 e mutant mice were asymptomatic, Prkdc/Mpv17 double-mutant mice developed mtDNA depletion and recapit
77 , IL-4 -/- BCL-6 -/- and STAT6 -/- BCL-6 -/- double-mutant mice developed the same TH2-type inflammat
82 -), Kcnq5(dn/dn) nor Kcnq4(-/-)/Kcnq5(dn/dn) double mutant mice displayed circling behavior found wit
86 ith behavioral data from mPer2/3 and mPer1/3 double-mutant mice, either mPER1 or mPER2 alone can sust
87 ot completely inhibited in P-selectin/ICAM-1 double-mutant mice (eosinophil recruitment inhibited app
89 les to promote muscle regeneration, as MSulf double mutant mice exhibit delayed myogenic differentiat
93 ility of Mre11 complex mutants; however, the double-mutant mice exhibited synergistic defects in DNA-
96 king myogenin alone and myoblasts from those double mutant mice formed differentiated multinucleated
100 -specific immune responses were quantitated, double-mutant mice had 100-fold more antigen-specific me
102 l mutant mice by gene targeting, we produced double mutant mice homozygous for both Agtr1a and Agtr1b
105 crossed together to generate Ku70, Ku80, and double-mutant mice in the same genetic background raised
106 Most notably, the clinical phenotype of the double mutant mice, in the absence of CNS ganglioside ac
107 The analysis of Rag2-/- Ctsl(nkt)/Ctsl(nkt) double-mutant mice indicates that the skin defect remain
108 ations (100 nM) is absent in Mel(1a)-Mel(1b) double-mutant mice, indicating that the Mel(1b) receptor
112 king the P2X2 receptor subunit (P2X2-/-) and double mutant mice lacking both P2X2 and P2X3 subunits (
113 thesis, we have characterized two strains of double mutant mice lacking either p18(INK4c) and p27(KIP
114 s1 and Irs2 in Igf1r signaling, we generated double mutant mice lacking Igf1r specifically in pancrea
115 with those of myogenin or MyoD, we generated double mutant mice lacking MRF4 and either myogenin or M
118 re(+) mice to myd88(f/f) animals, generating double-mutant mice lacking both Lyn and the adaptor prot
119 e primacy of cholesterol storage, neurons of double-mutant mice lacking both NPC1 and an enzyme requi
122 nent, genetic alteration of both pathways in double mutant mice leads to expansion of phenotypic HSCs
124 Hps5/Hps5,Hps6/Hps6 and Hps3/Hps3,Hps6/Hps6 double mutant mice mimic, in coat and eye colors, in mel
126 s c-Jun activation by comparing C3 mice with double mutant mice, namely C3 mice in which c-Jun had be
127 electro-olfactogram (EOG) recordings on the double-mutant mice, NCKX4(-/-);CNGB1(DeltaCaM), which ar
129 mical, and histochemical characterization of double-mutant mice overexpressing mutant human A53T alph
130 The absence of Cdx1 function in Rb/p130 double mutant mice partially reverted the histologic phe
131 eptor stimulation, peripheral B cells in the double mutant mice phenocopy hyperresponsive CD45 E613R
135 me of the skeletal defects seen in single or double mutant mice resemble defects seen in human skelet
136 ioral rhythms of mPer1/mPer3 and mPer2/mPer3 double-mutant mice resembled rhythms of mice with disrup
137 uggest that the severe kidney disease in the double-mutant mice results from a combination of immunol
138 ordings in cerebellar slices from Wnt7a/Dvl1 double mutant mice reveal a defect in neurotransmitter r
141 is; however, in Brn3a single and Brn3a;Brn3b double mutant mice, sensory afferent axons from the DRG
144 ressed by SAG neurons, and plexinA1/plexinA3 double mutant mice show defects in afferent projections
146 e display anxiolytic-like behavior, the male double-mutant mice show significantly more anxiety-like
147 ole as a mediator of mdm pathology, C3KO;mdm double mutant mice showed no change in the progression o
150 ity of the lung pathology in the beta c/IL-3 double-mutant mice showed normal hemodynamic parameters
152 tial embryonic lethality, with the surviving double-mutant mice showing synergistic increases in geno
154 increased lysosomal enzyme levels in lung of double mutant mice suggest a cause of a major clinical p
155 reduced EphA2 expression in hoxa1 and hoxb1 double mutant mice, suggest that expression of EphA2 gen
156 pe mice and normalized in cells derived from double mutant mice, suggesting a cell-autonomous effect
157 not affected in follicles from the single or double mutant mice, suggesting that diffusion of cAMP is
159 (TCR)-alpha-/- mice was explored by creating double mutant mice (TCR-alpha-/- x immunoglobulin (Ig)mu
160 t risk factor, oxidative stress, we produced double-mutant mice (Tg-MYOC(Y437H/+)/Sod2(+/-)) bearing
162 ole, we have initiated a program to generate double-mutant mice that are deficient in more than one f
163 double-mutant embryos or neonates; miR-133a double-mutant mice that survive to adulthood succumb to
166 n-deficient mice (ob/ob) and ob/ob, CAR(-/-) double mutant mice to identify a metabolic role of CAR i
167 T-VII(-/-), low density lipoprotein receptor double-mutant mice to evaluate the roles of E- and P-sel
168 requency of spontaneous TGCTs in single- and double-mutant mice to identify combinations that show ev
170 ce, a model of human diabetes, and generated double-mutant mice using the ACE2 knockout (KO) mice (Ak
171 tumor burden in the distal colon of Muc2/Apc double mutant mice was similar to the phenotype observed
172 inflammatory phenotype of p50(-/-)relB(-/-) double-mutant mice was markedly increased in both severi
180 nous DNA damaging agent, ionizing radiation, double-mutant mice were exquisitely sensitive to low dos
184 ifically for this study from Hoxa 11/Hoxd 11 double-mutant mice, were also modified to give cell popu
185 rm cells, we examined testes from Bclw/c-kit double mutant mice, which lack germ cells from birth.
186 mphatic vascular defects seen in Fgfr1/Fgfr3 double mutant mice, while HK2 overexpression partly resc
189 opment by comparing phenotypes in Emx1; Emx2 double mutant mice with wild-type and Emx1 and Emx2 sing
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