1.Genotype-Phenotype correlation of SMN locus genes in spinal muscular atrophy patients from India.
Akanchha KESARI ; M Mohammed IDRIS ; Giri Raj CHANDAK ; Balraj MITTAL
Experimental & Molecular Medicine 2005;37(3):147-154
Spinal muscular atrophy has been classified into four groups based on the age of onset and clinical severity of the disease. Homozygous deletion in SMN1 gene causes the disease but the clinical severity may be modified by copy number of homologous gene SMN2 as well as the extent of deletion at SMN locus. In the view of scarcity of genotype and phenotype correlation data from India, this study has been undertaken to determine that correlation in SMA patients by using the SMN and NAIP genes and two polymorphic markers C212 and C272 located in this region. Two to four alleles of the markers C212 and C272 were observed in normal individuals. However, majority of Type I patients showed only one allele from both markers whereas in Type II and III patients, 2-3 alleles were observed. The SMN2 copy number in our type III patients showed that patients carry 3-5 copies of SMN2 gene. Our results suggest that extent of deletions encompassing H4F5, SMN1, NAIP and copy number of SMN2 gene can modify the SMA phenotype, thus accounting for the different clinical subtypes of the disease.
Adolescent
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Adult
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Alleles
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Apoptosis
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Child
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Child, Preschool
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Chromosomes, Human, Pair 5/*genetics
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Comparative Study
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DNA Mutational Analysis
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DNA-Binding Protein, Cyclic AMP-Responsive/*genetics
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Enzyme Inhibitors/metabolism
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Female
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Gene Deletion
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*Genetic Markers
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Genotype
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Homozygote
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Humans
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India
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Infant, Newborn
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Male
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Muscular Atrophy, Spinal/*genetics/pathology
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Nerve Tissue Proteins/*genetics
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Phenotype
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RNA-Binding Proteins/*genetics
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Variation (Genetics)
2.Protein kinase A mediates microglial activation induced by plasminogen and gangliosides.
Kyoung Jin MIN ; Myung Soon YANG ; Ilo JOU ; Eun hye JOE
Experimental & Molecular Medicine 2004;36(5):461-467
In the injured brain, microglia is known to be activated and produce proinflammatory mediators such as interleukin-1beta (IL-1beta), tumor necrosis factor-alpha (TNF-alpha) and inducible nitric oxide synthase (iNOS). We investigated the role of protein kinase A (PKA) in microglial activation by both plasminogen and gangliosides in rat primary microglia and in the BV2 immortalized murine microglial cell line. Both plasminogen and gangliosides induced IL-1beta, TNF-alpha and iNOS mRNA expression, and that this expression was inhibited by the addition of the PKA inhibitors, KT5720 and H89. Both plasminogen and gangliosides activated PKA and increased the DNA binding activity of the cAMP response element- binding protein (CREB). Furthermore, KT5720 and H89 reduced the DNA binding activities of CREB and NF-kappaB in plasminogen-treated cells. These results suggest that PKA plays an important role in plasminogen and gangliosides- induced microglial activation.
Animals
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Carbazoles/pharmacology
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Cell Line
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Cyclic AMP-Dependent Protein Kinases/antagonists & inhibitors/*physiology
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DNA-Binding Protein, Cyclic AMP-Responsive/metabolism
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DNA-Binding Proteins/metabolism
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Gangliosides/pharmacology/*physiology
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Gene Expression Regulation
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Indoles/pharmacology
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Interleukin-1/genetics
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Isoquinolines/pharmacology
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Mice
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Microglia/drug effects/*enzymology/*immunology
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NF-kappa B/metabolism
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Nitric-Oxide Synthase/genetics
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Plasminogen/pharmacology/*physiology
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Pyrroles/pharmacology
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RNA, Messenger/analysis/metabolism
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Rats
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Research Support, Non-U.S. Gov't
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Sulfonamides/pharmacology
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Tumor Necrosis Factor-alpha/genetics