Sequence dependency of the internalization and distribution of phosphorothioate oligonucleotides in vascular smooth
1Laboratoire de Biochimie des Transports Cellulaires, CNRS URA 1116, Université Paris XI, Orsay, France.
Abstract:
Antisense studies imply the utilization of oligonucleotides (ODN) for sequence-specific down-regulation of genes. This usually consists in assessing antisense sequences versus control sequences (mismatched, inverted, scrambled, randomized or any sequence unrelated to the relevant target). Even though the investigated biological effect (knockdown of an unwanted protein) is observed only with the antisense sequence and weakly, if at all, with any of the control sequences, this is a necessary but not a sufficient condition to demonstrate an antisense effect. Indeed, biochemical parameters such as stability, uptake and subcellular compartmentalization of ODN in a given cellular system are most often sequence-dependent processes. In this work, a series of phosphorothioate ODN of different lengths and sequences were evaluated as to their binding, internalization and subcellular distribution properties in vascular smooth muscle cells. In addition to membrane binding and nuclear accumulation, the partition of ODN in the cytosol of cells was measured by a method based upon controlled permeabilization of the plasma membrane, permitting the recovery of the cytosolic content with minimal damage to the membranes of the endocytic vesicles and lysosomes. We found that the tested ODN showed striking differences in their uptake and distribution in smooth muscle cells. Our results gave rise to the problem of validating the observed biological effects when different sequences of ODN were compared. Cellular studies such as the one presented in this work could help in choosing the proper control sequences among ODN exhibiting similar cell interactions as compared to the antisense sequences. Moreover, this method could be useful for the selection of antisense sequences that can be efficiently internalized and preferentially distributed in the appropriate compartments in cells for in vitro antisense studies.
Insights
Oligonucleotides (ODN) show varied uptake and distribution in cells, impacting antisense study validity. This research highlights the need for cellular studies to select appropriate control ODN sequences for accurate gene silencing research.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Antisense studies use oligonucleotides (ODN) for gene-specific down-regulation.
- Validating antisense effects requires comparing antisense ODN to control sequences.
- ODN stability, uptake, and distribution are sequence-dependent, complicating validation.
Purpose of the Study:
- To evaluate phosphorothioate ODN binding, internalization, and subcellular distribution in vascular smooth muscle cells.
- To investigate sequence-dependent ODN cellular interactions.
- To address the challenge of validating biological effects when comparing different ODN sequences.
Main Methods:
- Assessed binding, internalization, and subcellular distribution of various ODN sequences in vascular smooth muscle cells.
- Utilized controlled plasma membrane permeabilization to measure cytosolic ODN content.
- Quantified ODN in cytosol, nucleus, and associated with membranes.
Main Results:
- Significant differences in ODN uptake and subcellular distribution were observed among tested sequences.
- Sequence and length influenced ODN interaction with vascular smooth muscle cells.
- Demonstrated variability in ODN cellular behavior, impacting experimental controls.
Conclusions:
- Cellular uptake and distribution studies are crucial for validating antisense effects.
- This method aids in selecting appropriate control ODN with similar cellular interactions.
- Facilitates selection of antisense ODN for efficient internalization and targeted cellular delivery in vitro.
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