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Updated: Dec 13, 2025

In Vitro Selection of Aptamers to Differentiate Infectious from Non-Infectious Viruses
Published on: September 7, 2022
A palindromic RNA sequence as a common breakpoint contributor to copy-choice recombination in SARS-COV-2
1Mockingbird Nature Research Group, Pearl River, LA, 70452, USA. profbillg1901@gmail.com.
Insights
The origin of SARS-CoV-2 (severe acute respiratory syndrome coronavirus 2) may be explained by recombination events facilitated by "breakpoint sequences." This hypothesis offers a natural explanation for the virus's biogenesis in the wild.
Area of Science:
- Virology
- Genomics
- Bioinformatics
Background:
- The origin of SARS-CoV-2, the virus responsible for the recent pandemic, remains incompletely understood.
- Coronaviruses evolve through mutations and recombination, creating unique genetic sequences.
- The consensus suggests SARS-CoV-2 shares a common ancestor with bat coronavirus RaTG13, with subsequent recombination events.
Purpose of the Study:
- To investigate the role of recombination in the biogenesis of SARS-CoV-2.
- To propose a mechanism explaining the genetic makeup of SARS-CoV-2.
Main Methods:
- Bioinformatic analysis of viral RNA sequences.
- Examination of recombination patterns and breakpoint sequences.
Main Results:
- SARS-CoV-2 acquired key features, like a receptor binding domain (RBD) for human ACE-2 and a furin cleavage site, through recombination.
- Short oligonucleotide sequences, such as CAGAC, act as "breakpoint sequences" facilitating these recombination events.
- These sequences direct recombination to specific genomic positions, influencing the virus's evolution.
Conclusions:
- The "breakpoint sequence hypothesis" provides a natural explanation for SARS-CoV-2's genetic structure and origin.
- Recombination, guided by specific sequences, is a key driver in the evolution of coronaviruses like SARS-CoV-2.
- This research sheds light on the natural processes underlying the emergence of novel viruses.
Abstract:
Much remains unknown concerning the origin of the novel pandemic coronavirus that has raged across the globe since emerging in Wuhan of Hubei province, near the center of the People's Republic of China, in December of 2019. All current members of the family Coronaviridae have arisen by a combination of incremental adaptive mutations, against the backdrop of many recombinational events throughout the past, rendering each a unique mosaic of RNA sequences from diverse sources. The consensus among virologists is that the base sequence of the novel coronavirus, designated SARS-CoV-2, was derived from a common ancestor of a bat coronavirus, represented by the strain RaTG13, isolated in Yunnan province in 2013. Into that ancestral genetic background, several recombination events have since occurred from other divergent bat-derived coronaviruses, resulting in localized discordance between the two. One such event left SARS-CoV-2 with a receptor binding domain (RBD) capable of binding the human ACE-2 receptor lacking in RaTG13, and a second event uniquely added to SARS-CoV-2 a site specific for furin, capable of efficient endoproteolytic cleavage and activation of the spike glycoprotein responsible for virus entry and cell fusion. This paper demonstrates by bioinformatic analysis that such recombinational events are facilitated by short oligonucleotide "breakpoint sequences", similar to CAGAC, that direct recombination naturally to certain positions in the genome at the boundaries between blocks of RNA code and potentially RNA structure. This "breakpoint sequence hypothesis" provides a natural explanation for the biogenesis of SARS-CoV-2 over time and in the wild.
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