Nucleic acid - protein interactions are critical for regulating gene activation in the nucleus. In the cytoplasm, however, potential nucleic acid-protein functional interactions are less clear. The emergence of a large and expanding number of non-coding RNAs and DNA fragments raises the possibility that the cytoplasmic nucleic acids may interact with cytoplasmic cellular components to directly alter key biological processes within the cell. We now show that both natural and synthetic nucleic acids, collectively XNAs, when introduced to the cytoplasm of live cell cardiac myocytes, markedly enhance contractile function via a mechanism that is independent of new translation, activation of the TLR-9 pathway or by altered intracellular Ca(2+) cycling. Findings show a steep XNA oligo length-dependence, but not sequence dependence or nucleic acid moiety dependence, for cytoplasmic XNAs to hasten myocyte relaxation. XNAs localized to the sarcomere in a striated pattern and bound the cardiac troponin regulatory complex with high affinity in an electrostatic-dependent manner. Mechanistically, XNAs phenocopy PKA-based modified troponin to cause faster relaxation. Collectively, these data support a new role for cytoplasmic nucleic acids in directly modulating live cell cardiac performance and raise the possibility that cytoplasmic nucleic acid - protein interactions may alter functionally relevant pathways in other cell types.
Cytoplasmic nucleic acid-based XNAs directly enhance live cardiac cell function by a Ca(2+) cycling-independent mechanism via the sarcomere.
细胞质核酸基 XNA 通过肌节以不依赖于 Ca(2+) 循环的机制直接增强活体心肌细胞的功能
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作者:Thompson Brian R, Soller Kailey J, Vetter Anthony, Yang Jing, Veglia Gianluigi, Bowser Michael T, Metzger Joseph M
| 期刊: | Journal of Molecular and Cellular Cardiology | 影响因子: | 4.700 |
| 时间: | 2019 | 起止号: | 2019 May;130:1-9 |
| doi: | 10.1016/j.yjmcc.2019.02.016 | 研究方向: | 细胞生物学 |
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