Q.If there are two pathogenic viruses, one with DNA and other with RNA, which would mutate faster? And Why?
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Start your 14-day free trial to unlock the full solution →RNA viruses mutate much faster than DNA viruses because their replication machinery lacks proofreading mechanisms, leading to a higher error rate during genome copying.
When we compare DNA and RNA viruses, the key difference lies in how their genetic material is copied inside a host cell. Both types of viruses hijack the host’s cellular machinery to replicate, but the enzymes involved in copying their genomes are fundamentally different in accuracy.
DNA viruses, like the herpesvirus or adenovirus, typically use the host cell’s DNA polymerase to replicate their genome. This enzyme has a built-in proofreading function — it can detect and correct mismatched nucleotides as it goes. As a result, the mutation rate in DNA viruses is relatively low, similar to that of the host’s own DNA. This makes DNA viruses genetically stable over time.
RNA viruses, such as the influenza virus, HIV, or the coronavirus that causes COVID-19, rely on RNA-dependent RNA polymerase — an enzyme that the virus itself brings or encodes. This enzyme does not have proofreading ability. It makes mistakes frequently, roughly one error for every 10,000 to 100,000 nucleotides copied. Since RNA genomes are typically a few thousand to tens of thousands of bases long, this means nearly every new viral particle carries at least one mutation.
The high mutation rate of RNA viruses is a major reason why vaccines for diseases like flu and COVID-19 need to be updated periodically — the virus changes its surface proteins faster than a DNA virus would. …
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