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DNA duplex stability: Effect of salt concentration and cation valency

Implementing Organization

Principal Investigator
Prof. Navin Singh
Birla Institute Of Technology And Science (BITS), Pilani, Rajasthan

Project Overview

Deoxyribonucleic acid (DNA) is a crucial biological macromolecule that stores genetic information in living organisms. It consists of repeating units called nucleotides, which are composed of sugar, phosphate, and bases (Adenine, Thymine, Guanine, or Cytosine). The double-helical structure of DNA is formed through pairing between bases on complementary strands, which can be disrupted during transcription and replication processes. This process is known as melting, denaturation, or unzipping of DNA. The study of DNA molecules is significant from physiological and technological perspectives. Intracellular sodium triggers cell division, and the presence of salt in the solution plays a pivotal role in many biological activities. The two strands of DNA carry a negative charge due to the phosphate group, so they can only make a stable pair in the presence of cations. These cations nullify the force of Coloumbic repulsion between the two strands. Primary salts generated inside the cell are $NaCl$ and $MgCl_2$, which release $Na^+$ and $Mg^{2+}$ when reacting with water. Chlorine rearranges itself in the form of hydrogen chloride ($HCl$), acting as electrostatic screening agents due to an attractive force between the positive ions and the negative strands. Theoretical studies on DNA phase transition often focus on the constant buffer or salt concentration. However, several studies have explored how ions interact with DNA and modulate its structure and interactions. The theoretical description is based on the standard Peyrard Bishop Dauxois (PBD) model, which has been used to study thermal and mechanical unzipping of the DNA molecule.

Source

Source
Science and Engineering Research Board (SERB), DST 2022-23
Funding Organization
Quick Information
Area of Research
Life Sciences & Biotechnology
Start Date
2023
End Date
2026
Status
Ongoing
Contact
navin@pilani.bits-pilani.ac.in
Output
No. of Research Paper
00
Technologies (If Any)
00
No. of PhD Produced
00
Publications
00
No. of Patents
Filed : 00
Grant : 00
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