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Biology subjects

Hayward, R.

Publications and source records attributed to Hayward, R..

2 recordsLinked to original sources

Lamin A/C controls nuclear matrin-3 levels and localization, but not alternative splicing of cassette exons

Disruptions in connections between the nuclear lamina and nuclear matrix occur in myopathic disorders. However, the biological significance of nuclear lamina - nuclear matrix coupling still remains largely undetermined. Previously it has been demonstrated that the nuclear matrix protein, matrin-3, binds to lamin A/C and this interaction is disrupted in laminopathies resulting in enhanced separation between the lamina and matrix. Matrin-3 has recently been identified as a core regulator of alternative splicing, whereas the involvement of lamin A/C in splicing still remains controversial. In this study, we demonstrate that lamin A/C is not only required for maintaining the nuclear organization of matrin-3, but also of other splicing activators and small nuclear ribonucleoproteins (snRNP) components. Interestingly, mis-localization of these splicing components did not appear to significantly disrupt alternative splicing events of cassette exons regulated by matrin-3. Thus, the lamin A/C-matrin3 interaction is unlikely to be involved in controlling alternative splicing but could be important in coordinating other nuclear activities. Interestingly, matrin-3 knock-down results in misshapen nuclei suggesting its interaction with lamin A/C maybe important in maintaining nuclear structural integrity.

cell biology

Dual RNA sequencing (dRNA-Seq) of bacteria and their host cells

Bacterial pathogens subvert host cells by manipulating cellular pathways for survival and replication; in turn, host cells respond to the invading pathogen through cascading changes in gene expression. Deciphering these complex temporal and spatial dynamics to identify novel bacterial virulence factors or host response pathways is crucial for improved diagnostics and therapeutics. Dual RNA sequencing (dRNA-Seq) has recently been developed to simultaneously capture host and bacterial transcriptomes from an infected cell. This approach builds on the high sensitivity and resolution of RNA-Seq technology and is applicable to any bacteria that interact with eukaryotic cells, encompassing parasitic, commensal or mutualistic lifestyles. We pioneered dRNA-Seq to simultaneously capture prokaryotic and eukaryotic expression profiles of cells infected with bacteria, using in vitro Chlamydia-infected epithelial cells as proof of principle. Here we provide a detailed laboratory and bioinformatics protocol for dRNA-seq that is readily adaptable to any host-bacteria system of interest.

genomics