scholarly article | Q13442814 |
P50 | author | Paulo Sérgio Lacerda Beirão | Q66976610 |
Jader Santos Cruz | Q43740138 | ||
P2093 | author name string | A L P Rodrigues | |
P Rhana | |||
R R Trivelato | |||
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Small interfering RNA therapy in cancer: mechanism, potential targets, and clinical applications | Q81077744 | ||
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Functional expression of the voltage-gated Na⁺-channel Nav1.7 is necessary for EGF-mediated invasion in human non-small cell lung cancer cells | Q39103592 | ||
NaV1.5 Na⁺ channels allosterically regulate the NHE-1 exchanger and promote the activity of breast cancer cell invadopodia | Q39117508 | ||
Na(V)1.5 enhances breast cancer cell invasiveness by increasing NHE1-dependent H(+) efflux in caveolae | Q39618185 | ||
Regulation of podosome formation in macrophages by a splice variant of the sodium channel SCN8A. | Q39896695 | ||
Alternative splicing of Nav1.5: an electrophysiological comparison of 'neonatal' and 'adult' isoforms and critical involvement of a lysine residue. | Q39994623 | ||
Single cell adhesion measuring apparatus (SCAMA): application to cancer cell lines of different metastatic potential and voltage-gated Na+ channel expression | Q40078794 | ||
Expression of the voltage-gated sodium channel NaV1.5 in the macrophage late endosome regulates endosomal acidification | Q40124031 | ||
Nerve growth factor enhances voltage-gated Na+ channel activity and Transwell migration in Mat-LyLu rat prostate cancer cell line | Q40200194 | ||
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Expression of Na+-dependent citrate transport in a strongly metastatic human prostate cancer PC-3M cell line: regulation by voltage-gated Na+ channel activity. | Q40478743 | ||
Developmentally regulated alternative RNA splicing of rat brain sodium channel mRNAs | Q40507940 | ||
CD44 interaction with Na+-H+ exchanger (NHE1) creates acidic microenvironments leading to hyaluronidase-2 and cathepsin B activation and breast tumor cell invasion | Q40565703 | ||
Voltage-gated Na+ channels confer invasive properties on human prostate cancer cells | Q40607095 | ||
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Glial cells have heart: rH1 Na+ channel mRNA and protein in spinal cord astrocytes | Q47951687 | ||
Mutually exclusive exon splicing of type III brain sodium channel alpha subunit RNA generates developmentally regulated isoforms in rat brain. | Q48102197 | ||
Overexpression of NaV 1.6 channels is associated with the invasion capacity of human cervical cancer | Q48258918 | ||
Directional movement of rat prostate cancer cells in direct-current electric field: involvement of voltagegated Na+ channel activity | Q49029407 | ||
Contactin associates with Na+ channels and increases their functional expression | Q28188411 | ||
Expression of alternatively spliced sodium channel alpha-subunit genes. Unique splicing patterns are observed in dorsal root ganglia | Q28276370 | ||
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Voltage-gated Na+ channel beta1 subunit-mediated neurite outgrowth requires Fyn kinase and contributes to postnatal CNS development in vivo | Q28510216 | ||
pH Homeostasis of cellular organelles | Q34112147 | ||
Voltage-gated Na+ channel SCN5A is a key regulator of a gene transcriptional network that controls colon cancer invasion | Q34116066 | ||
The complex ultrastructure of the endolysosomal system. | Q34248085 | ||
Voltage-gated sodium channels at 60: structure, function and pathophysiology | Q34265707 | ||
Angiogenic functions of voltage-gated Na+ Channels in human endothelial cells: modulation of vascular endothelial growth factor (VEGF) signaling | Q34947687 | ||
Ranolazine inhibits NaV1.5-mediated breast cancer cell invasiveness and lung colonization | Q34970151 | ||
Particular sensitivity to calcium channel blockers of the fast inward voltage-dependent sodium current involved in the invasive properties of a metastastic breast cancer cell line | Q35046156 | ||
The sodium channel-blocking antiepileptic drug phenytoin inhibits breast tumour growth and metastasis. | Q35061372 | ||
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Na+ Channel ? Subunits: Overachievers of the Ion Channel Family | Q35235909 | ||
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Organellar channels and transporters | Q35691118 | ||
Evolutionary convergence of alternative splicing in ion channels | Q35752648 | ||
Therapeutic potential for phenytoin: targeting Na(v)1.5 sodium channels to reduce migration and invasion in metastatic breast cancer. | Q36107167 | ||
The role of disturbed pH dynamics and the Na+/H+ exchanger in metastasis. | Q36263013 | ||
Neuronal characteristics of small-cell lung cancer | Q36304228 | ||
Clinical relevance of ion channels for diagnosis and therapy of cancer | Q36345960 | ||
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A novel adhesion molecule in human breast cancer cells: voltage-gated Na+ channel beta1 subunit. | Q37183730 | ||
Chemical modification of siRNAs for in vivo use. | Q37331765 | ||
Molecular pharmacology of voltage-gated sodium channel expression in metastatic disease: clinical potential of neonatal Nav1.5 in breast cancer | Q37616288 | ||
Sensors and regulators of intracellular pH. | Q37649497 | ||
Beneficial effects of omega-3 long-chain fatty acids in breast cancer and cardiovascular diseases: voltage-gated sodium channels as a common feature? | Q37694800 | ||
Endosome maturation, transport and functions | Q38202717 | ||
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P275 | copyright license | Creative Commons Attribution 4.0 International | Q20007257 |
P6216 | copyright status | copyrighted | Q50423863 |
P433 | issue | 7 | |
P407 | language of work or name | English | Q1860 |
P921 | main subject | voltage-gated sodium channel complex | Q14905705 |
breast neoplasm | Q23929670 | ||
neoplastic gene expression regulation | Q66660300 | ||
P5008 | on focus list of Wikimedia project | ScienceSource | Q55439927 |
P304 | page(s) | e6011 | |
P577 | publication date | 2017-06-05 | |
P13046 | publication type of scholarly work | review article | Q7318358 |
P1433 | published in | Brazilian Journal of Medical and Biological Research | Q2025772 |
P1476 | title | Is there a role for voltage-gated Na+ channels in the aggressiveness of breast cancer? | |
P478 | volume | 50 |
Q64916539 | Somatic Mutations Profile of a Young Patient With Metastatic Urothelial Carcinoma Reveals Mutations in Genes Involved in Ion Channels. | cites work | P2860 |
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