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1 (CCR2) and the integrin Very Late Antigen 4 (VLA-4).
2  integrins, principally via alpha(4)beta(1) (VLA-4).
3 d U937 cells expressing Very Late Antigen-4 (VLA-4).
4 4beta1 (also known as very late antigen-4 or VLA-4).
5  antigen 1 (LFA-1), and very late antigen 4 (VLA-4).
6 ression of multiple inflammatory markers and VLA-4.
7  LFA-1 conformation in a manner analogous to VLA-4.
8 ariety of membrane proteins, one of which is VLA-4.
9 ith an inhibiting cross talk of LFA-1 toward VLA-4.
10  and adhesion receptors, including CXCR4 and VLA-4.
11 mechanisms are involved in the regulation of VLA-4.
12 reased renal expression of LLT-1, MCP-1, and VLA-4.
13 -I cells up-regulated expression of CD44 and VLA-4.
14 otential imaging candidate for overexpressed VLA-4.
15 n MS pathogenesis and express high levels of VLA-4.
16 determined the affinity of the compounds for VLA-4.
17  the blood to sites of infection mediated by VLA-4.
18 zation and the signaling pathway of integrin VLA-4.
19  abrogated using blocking antibodies against VLA-4.
20 cific CXCR4 inhibitor and antibodies against VLA-4.
21          We wanted to determine whether anti-VLA-4 Ab treatment affected the function and persistence
22 y not appreciated deleterious effect of anti-VLA-4 Ab treatment in combination with exposure to pertu
23           During T cell migration on VCAM-1, VLA-4 activation concurs with spatial redistribution of
24                                         This VLA-4 activation is mediated via a Rac1/Rap1 GTPase sign
25 ection fluorescence microscopy, we show that VLA-4 activation localizes to the lamellipodium in livin
26 e of HUTS-21 binding was also related to the VLA-4 activation state even at saturating ligand concent
27 agement of CD44 or of HCELL directly induces VLA-4 activation via G-protein-dependent signaling, trig
28  mechanism of CD11c/CD18 and very late Ag-4 (VLA-4) activation and cooperation in shear-resistant cel
29                      Coblockade of LFA-1 and VLA-4 adhesion molecules temporarily depleted long-lived
30 onal CXCR4 and CXCR5 chemokine receptors and VLA-4 adhesion molecules.
31  signaling through neutrophil CXCR4 augments VLA-4 adhesion to VCAM-1 in vitro, an effect that is blo
32 igh-affinity CD11c, which directly activated VLA-4 adhesion via phosphorylated spleen tyrosine kinase
33  in turn activate multiple integrins (LFA-1, VLA-4), adhesion molecules (ICAM-1, MadCAM-1) and the ch
34 c are early and critical events in signaling VLA-4 adhesive function on foamy monocytes competent to
35 ement of hMSC HCELL with E-selectin triggers VLA-4 adhesiveness, resulting in shear-resistant adhesio
36 ning small molecule that was used to monitor VLA-4 affinity changes in live cells.
37 thway that connects shear, Ca(2+) elevation, VLA-4 affinity, and cell avidity.
38 f adjacent thiols in the exofacial domain of VLA-4 after its ligation to stromal fibronectin.
39                                              VLA-4 (alpha(4)beta(1)) is a key integrin in the effecti
40                                 The integrin VLA-4 (alpha(4)beta(1)) mediates tethering and rolling e
41 ) (alpha(L)beta(2)) and very late antigen 4 (VLA-4) (alpha(4)beta(1)).
42 We report that costimulation by the integrin VLA-4 (alpha4beta1) required SLP-76 domains implicated i
43                         Very-late-antigen-4 (VLA-4, alpha4beta1 integrin, CD49d/CD29) is a transmembr
44                      Increased expression of VLA-4 also resulted in increased transendothelial migrat
45      We also show that VEGFR1+ cells express VLA-4 (also known as integrin alpha4beta1), and that tum
46 ty peptidomimetic ligand for very late Ag-4 (VLA-4; also called integrin alpha4beta1) binding cells i
47                         Very late antigen-4 (VLA-4; also called integrin alpha4beta1) is a transmembr
48         VCAM-1 is one of the main ligands of VLA-4, an integrin that is highly expressed on the surfa
49 okine receptors (CXCR4), adhesion molecules (VLA-4 and CD44), and hypoxia-related proteins.
50 n and ICAM-1 interactions as well as through VLA-4 and connecting segment-1 fibronectin/VCAM-1 intera
51 ch could be blocked using inhibitors against VLA-4 and CXCR4.
52 precursor cells (hGPs) were transfected with VLA-4 and labeled with superparamagnetic iron oxide that
53 through downregulation of adhesion molecules VLA-4 and LFA-1, which are necessary for macrophage migr
54  blocking alone, but was abrogated when both VLA-4 and MCAM were inhibited.
55  CLP was ICAM-1-dependent and independent of VLA-4 and VCAM-1.
56 s can be blocked in vivo by RGD peptides and VLA-4 and VLA-5 but not beta(2) blocking antibodies.
57 the presence of cytokines, the engagement of VLA-4 and VLA-5 integrins to the fibronectin fragment CH
58 ously shown that engagement of the integrins VLA-4 and VLA-5 to the fibronectin fragment CH-296 in co
59 es adhesive functions of T-cell alpha4beta1 (VLA-4) and alphaLbeta2 (LFA-1) in in vivo and in vitro m
60            Because alpha(4)beta(1) integrin (VLA-4) and its ligand VCAM-1 play a central role in the
61 e we show that the integrin alpha(4)beta(1) (VLA-4) and its ligand VCAM-1 were required, whereas the
62      Here we show that integrin alpha4beta1 (VLA-4) and VCAM-1 promote close intercellular adhesion b
63 -primed T cells express very late antigen-4 (VLA-4), and functional blocking antibodies to alpha4 cha
64 ion molecules (such as VCAM-1 the ligand for VLA-4), and leukocyte adhesion to vascular endothelium.
65 uding CXCR4, very late activation antigen 4 (VLA-4), and lymphocyte function-associated antigen 1.
66 d these cells' relative expression of CXCR4, VLA-4, and LFA-1, the homing and adhesion molecules that
67 f adhesion between the alpha4beta1 integrin, VLA-4, and VCAM-1.
68 alpha4beta1 (very late activation antigen-4 [VLA-4]) and vascular cell adhesion molecule-1 (VCAM-1) p
69          In contrast, HSPC mobilization by a VLA-4 antagonist was intact.
70 This increased retention can be blocked by a VLA-4 antagonist, suggesting that the cells retained aft
71 ed the ability of BIO 5192, a small-molecule VLA-4 antagonist, to regulate active proteolipid protein
72                  In accord with reports that VLA-4 antagonists in vivo induce mobilization of hematop
73 acokinetic profiles typical of this class of VLA-4 antagonists, and sustained activity as measured by
74        Extremely potent very late antigen-4 (VLA-4) antagonists with picomolar, whole blood activity
75                    Administration of IL-5 or VLA-4 antibody prior to OVA challenge prevented the deve
76 tly less in animals pretreated with the anti-VLA-4 antibody than in those receiving a control antibod
77 afor, a CXCR4 antagonist, and natalizumab, a VLA-4 antibody.
78  be developed by promoting the generation of VLA-4(+) antitumor Tc1 cells.
79 sts; 2) decrease ligand binding affinity for VLA-4 approximately 2 orders of magnitude; 3) exhibit an
80  activation of the alpha(4)beta(1) integrin, VLA-4) are slow to initiate in Lyn(-/-) BMMCs, but persi
81 de synthase-2, highlighting the potential of VLA-4 as a surrogate marker of acute lung inflammation.
82 ment of a pre-existing pool of high-affinity VLA-4 as previously thought.
83  of targeted imaging of very late antigen-4 (VLA-4), as a key integrin mediating the adhesion and rec
84 ates the feasibility of molecular imaging of VLA-4, as a mechanistically relevant target in ALI, and
85        Selective inhibition of the activated VLA-4 at the leading edge with a small molecule inhibito
86 igen (LFA-1) and VCAM-1/very late antigen-4 (VLA-4) at select time points compared with PBS-treated a
87 Here we show that interruption of the VCAM-1/VLA-4 axis with a small molecule inhibitor of VLA-4, BIO
88 rofoundly reduced cell surface expression of VLA-4 before and after stimulation.
89 iently transfected with very late antigen-4 (VLA-4) binding to vascular cell adhesion molecule-1 (VCA
90 model system, changes in the affinity of the VLA-4-binding pocket were reflected in rapid cell aggreg
91 LA-4 axis with a small molecule inhibitor of VLA-4, BIO5192, results in a 30-fold increase in mobiliz
92 p-regulation of VLA-4 during EIU and suggest VLA-4 blockade as a promising therapeutic strategy for t
93 at lymphocyte trafficking into the CNS under VLA-4 blockade can occur by using the alternative adhesi
94                                              VLA-4 blockade in vivo significantly suppressed all uvei
95 ed rolling and residual adhesion, even under VLA-4 blockade.
96                                  Antibody to VLA-4 blocked the accumulation of peripheral tissue-deri
97 on of MCAM(+)/TH17 cells was not affected by VLA-4 blocking alone, but was abrogated when both VLA-4
98                                     CD13 and VLA-4 blocking and activating Abs were used in flow-base
99 se (hybridoma clone PS/2) is not specific to VLA-4 but inhibits both alpha4beta1 and alpha4beta7 inte
100 ansfection studies that CD44 associates with VLA-4 but not LFA-1 on the plasma membrane of immune cel
101 mokine receptor CXCR4 and the integrin dimer VLA-4, but lack expression of E-selectin ligands that pr
102 e conclude that conformational activation of VLA-4 by inside-out signaling is independent of and addi
103 icient to restrict CD8+ T cell expression of VLA-4 (by IL-4), thereby serving as a regulator for CD8+
104 ional blocking antibodies to alpha4 chain of VLA-4 (CD49d) inhibited the ability of MBP-primed T cell
105 cking of antibodies to the alpha(4) chain of VLA-4 (CD49d) suggest that VLA-4 integrin on MBP-primed
106 pha(4)beta(1)-integrin (very late antigen-4 (VLA-4), CD49d/CD29) is an adhesion receptor involved in
107 or leukocyte integrins, very late antigen-4 (VLA-4, CD49d/CD29).
108 xpression patterns of fibronectin and VEGFR1+VLA-4+ clusters dictate organ-specific tumour spread.
109  cell cycle and more cells express CXCR4 and VLA-4 compared with G-CSF-mobilized CD34(+) cells.
110  mice given antibodies against both CD18 and VLA-4 compared with mice given the anti-CD18 antibody an
111 suggesting that CD49d is solely expressed in VLA-4 complexes.
112                                              VLA-4 conformational activation has been associated with
113  of the leukocyte adhesion markers LFA-1 and VLA-4, consistent with its ability to improve leukocyte
114 ther, B cell-restricted very late antigen-4 (VLA-4) deficiency abrogated EAE dependent on B cell anti
115 ings demonstrate that neutrophils coordinate VLA-4-dependent B cell accumulation within the meninges
116 neously migrate beneath MSCs in a CXCR4- and VLA-4-dependent fashion (pseudoemperipolesis).
117 ic lesions, KC but not murine MCP-1 triggers VLA-4-dependent monocyte recruitment.
118 , resulting in enhanced very late antigen-4 [VLA-4] directed adhesion and motility.
119 dependent adhesion, we showed that CXCR4 and VLA-4 directly interact in response to SDF-1, we further
120 vel evidence for functional up-regulation of VLA-4 during EIU and suggest VLA-4 blockade as a promisi
121 demonstrate unexpected synergism of CD44 and VLA-4 during lymphocyte extravasation.
122  the utility of small molecule inhibitors of VLA-4 either alone or in combination with G-CSF or AMD31
123 utant form Stat6 (Stat6VT) failed to express VLA-4 even in the absence of IL-4-stimulation.
124                                  IL-18R/VEGF/VLA-4-expressing A375 and 1182 melanoma cells produced a
125 ative in vivo MR cell tracking revealed that VLA-4-expressing cells docked exclusively within the vas
126 d of the ipsilateral carotid artery and that VLA-4-expressing cells exhibited significantly enhanced
127 4-naive hGPs and LPS, and rats that received VLA-4-expressing hGPs and LPS.
128  but did not receive LPS, rats that received VLA-4-expressing hGPs but not LPS, rats that received VL
129 argeted intraarterial delivery and homing of VLA-4-expressing hGPs to inflamed endothelium is feasibl
130 and without the IL-18 receptor (IL-18R)/VEGF/VLA-4-expressing phenotype were identified, and their me
131                                         High VLA-4 expression (> median MFI), compared with low expre
132 erived from patient leukemic cells with high VLA-4 expression and activity, we demonstrated that AS10
133                                     Enhanced VLA-4 expression has been observed in multiple myeloma (
134 Dl-1, and BTLA expression; and (iv) reducing VLA-4 expression in both the T- and B-cell populations.
135 rted a direct effect of myeloma on increased VLA-4 expression in host hematopoietic microenvironmenta
136  results underscore the importance of B-cell VLA-4 expression in the pathogenesis of CNS autoimmunity
137                                         High VLA-4 expression is associated with better clinical outc
138 e show that IL-4-mediated down-regulation of VLA-4 expression is completely abrogated in Stat6-defici
139 , we report that the selective inhibition of VLA-4 expression on B cells impedes CNS accumulation of
140       Our recent studies have suggested that VLA-4 expression on CD8+ T cells is negatively controlle
141                                              VLA-4 expression on Tc2 cells was down-regulated in an i
142 suggesting that IL-4 uniquely down-regulates VLA-4 expression on these cells.
143                                              VLA-4 expression varied widely, with mean expression 60.
144        Multivariate analyses showed that low VLA-4 expression was an independent adverse prognostic f
145 patients with standard-risk AML, in whom low VLA-4 expression was associated with inferior DFS (34% +
146                      In wild-type (WT) mice, VLA-4 expression was less on neutrophils that emigrated
147 alyses indicated that the prognostic role of VLA-4 expression was most prominent in patients with sta
148 ell motility in monocytes, alongside reduced VLA-4 expression, an integrin predominantly involved in
149                            Patients with low VLA-4 expression, compared with high expression, had a h
150 nly the truncated form of CD44 together with VLA-4 fail to traffic to an inflamed site, thereby defin
151 esonance energy transfer analysis of a novel VLA-4 FRET sensor under total internal reflection fluore
152 uption of CXCR4 signaling and attenuation of VLA-4 function are independent mechanisms of mobilizatio
153          However, the antibody used to block VLA-4 function in the mouse (hybridoma clone PS/2) is no
154 b-mediated blockade of the adhesion molecule VLA-4 has been shown to ameliorate disease in human mult
155 h factor receptor-1 and very late antigen-4 (VLA-4) have been shown to arrive at sites of metastasis
156 +) T cells trafficking to CSF were uniformly VLA-4(high), LFA-1(high).
157 nd therapeutic potential comprised of TYRP2, VLA-4, HSP70, an HSP90 isoform and the MET oncoprotein.
158 the presence of costimulatory blockade, anti-VLA-4 impaired T-cell trafficking to the graft but not m
159               Interestingly, the blocking of VLA-4 impaired the ability of MBP-primed T cells to indu
160 P2A-Cy5 demonstrated binding specificity for VLA-4 in an immune-competent murine MM model.
161 ient transfection of SPIO-labeled cells with VLA-4 in combination with their arterial injection and t
162 s (P<0.05), suggesting an important role for VLA-4 in EIU.
163 ate that the CXCR4/SDF-1 axis interacts with VLA-4 in regulating migration and adhesion of WM cells i
164       This study illustrates a novel role of VLA-4 in regulating neuroantigen-primed T cell-induced a
165 we measured in real time affinity changes of VLA-4 in response to shear.
166 ely, these data support the critical role of VLA-4 in the effective intracranial tumor homing of adop
167  demonstrate that the affinity regulation of VLA-4 in the presence of shear was related to Ca(2+) sig
168                     The counter-receptor for VLA-4 in this rat retina model appears to be fibronectin
169                     Functional activation of VLA-4 in vivo was investigated in our previously introdu
170  mRNA, the major endothelial cell ligand for VLA-4, increased more in E. coli than in S. pneumoniae p
171 uced by bacteria in the lungs occurs through VLA-4-independent mechanisms.
172                          Similarly, CXCR4 or VLA-4 inhibition led to significant inhibition of adhesi
173                        Our data suggest that VLA-4 integrin hybrid domain movement does not depend on
174 alpha(4) chain of VLA-4 (CD49d) suggest that VLA-4 integrin on MBP-primed T cells plays an important
175 ls with IFN-beta inhibited the expression of VLA-4 integrin on the surface of MBP-primed T cells and
176            Increased expression of CXCR4 and VLA-4 integrin resulted in concentration-dependent chemo
177 the affinity and conformational state of the VLA-4 integrin simultaneously with cell activation initi
178                                   Similar to VLA-4 integrin, modulation of the ligand dissociation ra
179           Both alpha4 and beta1, subunits of VLA-4 integrin, were found to be necessary for T cell co
180                            Unlike selectins, VLA-4 integrin-mediated lymphocyte adhesiveness can be m
181 n-1 receptor (MC1R) and very late antigen-4 (VLA-4, integrin alpha(4)beta(1)) are 2 attractive molecu
182                       However, engagement of VLA-4 integrins on UCB-derived CD34(+) cells reduced cel
183  Although it is well-established that VCAM-1/VLA-4 interactions can play important roles in mediating
184                                              VLA-4 is a promising MM imaging and therapeutic biomarke
185                  In this study, we show that VLA-4 is expressed on murine marrow neutrophils and decr
186 ta suggest that a subpopulation of activated VLA-4 is mainly localized to the leading edge of polariz
187 gest that beta1, but not alpha4, integrin of VLA-4 is the sex-specific molecule on T cell surface, an
188              We have shown that the integrin VLA-4 is used preferentially over LFA-1 in conjunction w
189 e demonstrate that the alpha4beta1 integrin (VLA-4) is the receptor that mediates CD47-stimulated SS
190 atalizumab, which binds very late antigen-4 (VLA-4), is a potent therapy for multiple sclerosis (MS).
191 molecule-1 (VCAM-1; CD106), the receptor for VLA-4, is an important mediator of adhesive and co-stimu
192 neal cavity after CLP, which is dependent on VLA-4, is impaired in above mutant and FcRgamma chain-de
193 nctional BM niche with hematopoietic CXCR4(+)VLA-4(+)LFA-1(+) nursery cells, which provide PC surviva
194 CD62L(-)) and expressing adhesion molecules (VLA-4(+)LFA-1(+)) complementary to activated brain endot
195 fic growth factors upregulate fibronectin--a VLA-4 ligand--in resident fibroblasts, providing a permi
196                                Costimulatory VLA-4 ligands also prevented the centralization of SLP-7
197                                              VLA-4 ligation retarded these flows, even in the absence
198 e observed a high level of mortality in anti-VLA-4 mAb (PS/2)-treated mice with actively induced EAE
199 ple sclerosis patients treated with the anti-VLA-4 mAb natalizumab, which selectively inhibits cell m
200            CD20+ B cell depletion plus LFA-1/VLA-4 mAb treatment significantly prolonged Ag-specific
201                                              VLA-4 mean fluorescence intensity (MFI) varied 35-fold (
202 pha(4)beta(1) integrin, very late antigen-4 (VLA-4), measured with an LDV-containing small molecule,
203 teinase-9 secretion and very late antigen 4 (VLA-4)-mediated adhesion to vascular cell adhesion molec
204 olecule-1 (VCAM-1)- and very late antigen-4 (VLA-4)-mediated localization of CXCR4(+) megakaryocyte p
205 kinases control chemokine-induced LFA-1- and VLA-4-mediated adhesion as well as human T lymphocyte ho
206 -mediated adhesion of BMDM to ICAM-1 but not VLA-4-mediated adhesion to VCAM-1 was enhanced by Cbl-b
207 mma chain and Syk, leading to enhancement of VLA-4-mediated adhesion to VCAM-1.
208 perimental clinical agent, AS101, to degrade VLA-4-mediated chemoresistance and improve clinical resp
209 echanism between LFA-1-mediated upstream and VLA-4-mediated downstream phenotypes.
210 l cell-derived factor-1alpha (SDF-1alpha) on VLA-4-mediated lymphocyte adhesion, human PBL were flowe
211 s, showing that cross-talk between CXCR4 and VLA-4 modulates marrow retention of these cells.
212                                         Anti-VLA-4 monoclonal antibody (mAb) treatment prior to EAE o
213 rating that two adhesion molecules, CD44 and VLA-4, must be physically associated with each other on
214 gnificantly enhanced homing as compared with VLA-4-naive cells (1448 significant pixels+/-366.5 vs 11
215 helium significantly increased compared with VLA-4-naive control cells (71.5 cells per field of view+
216 ressing hGPs but not LPS, rats that received VLA-4-naive hGPs and LPS, and rats that received VLA-4-e
217 ting of three rats each): rats that received VLA-4-naive hGPs but did not receive LPS, rats that rece
218 dies that target the cell adhesion molecules VLA-4 (natalizumab; Tysabri for multiple sclerosis and C
219 ts under long-term anti-very late antigen-4 (VLA-4)/natalizumab therapy (LTNT) and from CNS specimens
220 ase in the percentage of nonapoptotic CD11b+ VLA-4-negative macrophages/monocytes in blood.
221 positive human melanoma B16F10 cells than in VLA-4-negative MDA-MB-231 cells (P < 0.05).
222                                              VLA-4-negative MDA-MB-231/firefly luciferase (fluc) huma
223 A-4-positive B16F10 mouse melanoma cells and VLA-4-negative MDA-MB-231/fluc human breast cancer tumor
224  = 7 and 8 mice) on nude mice implanted with VLA-4-negative MDA-MB-231/fluc human breast tumor cells
225             Interaction between the integrin VLA-4 on acute myelogenous leukemia (AML) cells with str
226 cordance with the differential expression of VLA-4 on Tc1 versus Tc2 cells, Tc1 cells alone were comp
227 increased the abundance of adhesion molecule VLA-4 on Th17 cells, knockout of HuR impaired splenic Th
228 d antigen-1 (LFA-1) and very late antigen-4 (VLA-4) on adhesion of influenza hemagglutinin (HA)-speci
229       The expression of very late antigen-4 (VLA-4) on the surface of MBP-primed T cells and inhibiti
230                    Anti-very late antigen 4 (VLA-4; on neutrophils) inhibited adhesion to TNF-alpha-a
231 latory blockade was coupled with either anti-VLA-4 or anti-LFA-1.
232                            However, blocking VLA-4 or vascular cell adhesion molecule 1 (VCAM-1) had
233 we evaluated 2 conjugates of a high-affinity VLA-4 peptidomimetic ligand, LLP2A, for PET/CT imaging i
234 64)Cu-CB-TE1A1P-PEG4-LLP2A), a high-affinity VLA-4 peptidomimetic-based radiopharmaceutical, was eval
235 anoma cells with and without the IL-18R/VEGF/VLA-4 phenotype had distinct transcript patterns.
236 m melanomas with and without the IL-18R/VEGF/VLA-4 phenotype may serve as diagnostic biomarkers of me
237 anoma cells with and without the IL-18R/VEGF/VLA-4 phenotype.
238 cells with, but not without, the IL-18R/VEGF/VLA-4 phenotype.
239 molecule 1 (VCAM-1) and very late antigen-4 (VLA-4) played an integral role in the activation of NF-k
240                                              VLA-4 plays a critical role in T cell trafficking into i
241                      These data suggest that VLA-4 plays a small role in CD18-independent neutrophil
242 he antigen alpha4beta1 (very late antigen-4, VLA-4) plays an important role in the migration of white
243 ke of (64)Cu-CB-TE2A-LLP2A was determined in VLA-4-positive B16F10 mouse melanoma cells and VLA-4-neg
244 istribution experiments in nude mice bearing VLA-4-positive B16F10 subcutaneous tumors in the flank w
245 an breast tumor cells suggested an influx of VLA-4-positive BMD cells that corresponded to metastasis
246 re we describe experiments toward imaging of VLA-4-positive BMD cells using a high-affinity PET probe
247 d flow cytometry also showed upregulation of VLA-4-positive cell clusters and BMD cells at the metast
248 lank were conducted to validate targeting of VLA-4-positive cells in vivo.
249 Uptake of (64)Cu-CB-TE2A-LLP2A was higher in VLA-4-positive human melanoma B16F10 cells than in VLA-4
250  LLP2A-Cy5 demonstrated high specificity for VLA-4-positive mouse 5TGM1-GFP myeloma and nonmalignant
251 ng agents for melanoma and potentially other VLA-4-positive tumors.
252 unity, Nguyen et al. show that engagement of VLA-4 promotes sustained signaling by altering the dynam
253      Here we show that integrin alpha4beta1 (VLA-4) promotes the homing of circulating progenitor cel
254 CAM-1 depended on induction of high-affinity VLA-4 rather than recruitment of a pre-existing pool of
255  Although vascular cell adhesion molecule-1 (VLA-4 receptor) was expressed at all CNS barriers, P-sel
256 luidic adhesion assay was used for assessing VLA-4 receptor-mediated cell docking in vitro.
257 cule that preferentially binds high-affinity VLA-4 reduced PBL firm adhesion to VCAM-1 by 90%.
258 ens a range of therapeutic possibilities for VLA-4-related pathologies.
259  (64)Cu-CB-TE2A-LLP2A had high uptake in the VLA-4-rich organs marrow, spleen, and tumor (11.26% +/-
260                         Here, we investigate VLA-4's role in endotoxin-induced uveitis (EIU).
261                                    Secondly, VLA-4 synergizes with the B-cell receptor (BCR), providi
262 study demonstrated the potential of PET with VLA-4-targeted (64)Cu-CB-TE2A-LLP2A to visualize BMD cel
263       These parameters were analyzed using a VLA-4-targeted liposome system in a multiple myeloma mou
264  relevant target in ALI, and the accuracy of VLA-4-targeted PET in quantification of ongoing lung inf
265                                              VLA-4-targeted PET/CT was performed 24 h after intraveno
266  review highlights the advances of MC1R- and VLA-4-targeted radiolabeled peptides and peptide-conjuga
267                                    MC1R- and VLA-4-targeting peptides and peptide-conjugated Cornell
268 uce high-affinity conformations of LFA-1 and VLA-4 that recognize their endothelial cell ligands and
269        Expression levels of both subunits of VLA-4, that is, integrins alpha(4) and beta(1), signific
270  marrow is adhesion via very late antigen-4 (VLA-4), the alpha(4)beta(1) integrin heterodimer that bi
271  liposomes by cancerous cells overexpressing VLA-4 to 15-fold over that of non-targeted liposomes in
272 edly did not significantly affect binding of VLA-4 to its ligand VCAM-1 (vascular cell adhesion molec
273 the relationship of functional expression of VLA-4 to prognosis in AML, we studied marrow samples fro
274                Marrow neutrophils adhere via VLA-4 to VCAM-1, which is expressed on marrow endotheliu
275  (CD11c/CD18) that activates beta1-integrin (VLA-4) to bind endothelial VCAM-1.
276 with anti-very late activation antigen (anti-VLA-4), uncovered potentially important insight in the i
277 y to probe the "switchblade-like" opening of VLA-4 upon activation.
278 onsistent with the half-life of low-affinity VLA-4-VCAM-1 bonds.
279 ate that the first step is rate limiting for VLA-4-VCAM-1 interactions.
280 en together, these results indicate that the VLA-4/VCAM adhesion pathway is critical in the retention
281 esults further demonstrate the complexity of VLA-4/VCAM interactions, particularly in a relapsing-rem
282                  These results show that the VLA-4/VCAM-1 interaction during membrane antigen recogni
283 ransformed cells, and targeting NF-kappaB or VLA-4/VCAM-1 signaling could be a clinically relevant me
284                                         In a VLA-4/VCAM-1-specific myeloid cell adhesion model system
285 ymphocyte function-associated antigen-1) and VLA-4 (very late antigen-4) is essential for T-cell traf
286 P-1 (monocyte chemoattractant protein-1) and VLA-4 (very-late antigen-4).
287 rm adhesion due to blockage of high-affinity VLA-4 was paralleled by a 4-fold increase in the fractio
288 l of potency against the unactivated form of VLA-4 was shown to be sufficient to overcome the poor ph
289 ver, increased binding of soluble VCAM-1 via VLA-4 was significantly associated with longer OS, corre
290 ential costimulatory activity of intact anti-VLA-4, we examined the ability of BIO 5192, a small-mole
291  induced multiple states of high affinity of VLA-4, where the affinity change was accompanied by an e
292 h integrin beta1, forms very late antigen-4 (VLA-4), which interacts with vascular cell adhesion mole
293  mediated in part by the leukocyte integrin, VLA-4, which binds to endothelial vascular cell adhesion
294 s indicate [(64)Cu]-LLP2A is a PET probe for VLA-4, which when used in conjunction with [(18)F]-FDG,
295 ing P-selectin, interactions of the integrin VLA-4 with its ligand VCAM-1, and pertussis toxin-sensit
296 1 with its ligand ICAM-1 and of the integrin VLA-4 with its ligand VCAM-1, of polarized T cells at th
297          Interaction of very late antigen-4 (VLA-4) with its ligand vascular cell adhesion molecule-1
298 nd NODAGA-PEG4-LLP2A showed high affinity to VLA-4, with a comparable dissociation constant (0.28 vs.
299 g to infection expressed increased levels of VLA-4, with consequent improved entry into inflamed tiss
300 1c correlated with concomitant activation of VLA-4 within focal adhesive contacts was required for ar

 
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