NSP13

Reference:
Size

100ug, 50ug

Brand

Product type

Host Species

Product nameNSP13
Origin speciesSARS-COV2
Expression systemProkaryotic expression
Molecular weight69kDa
Purity estimated80%
BufferPBS, pH7.5, 0.02%NLS
Formliquid
Delivery conditionDry Ice
Storage condition4°C for short term; -20°c or -80°C for long term
BrandProteoGenix
Host speciesEscherichia coli (E.coli)
Fragment TypeFull length
Aliases /SynonymsNon-structural protein 13
ReferencePX-COV-P031
NoteFor research use only

Description of NSP13

Structure of NSP13

NSP13, also known as the helicase protein, is a key component of the coronavirus replication complex. It is a non-structural protein, meaning it is not part of the viral particle itself, but is instead produced by the virus during its replication process. NSP13 is encoded by the ORF1ab gene of the coronavirus genome and is essential for the virus to replicate and spread.

The structure of NSP13 is composed of three domains: the N-terminal domain (NTD), the middle domain (MD), and the C-terminal domain (CTD). The NTD is responsible for binding to the viral RNA, while the MD and CTD work together to form a ring-shaped structure that encircles the RNA and unwinds it. This unwinding process is crucial for the replication of the virus, as it allows the viral RNA to be copied and translated into new viral proteins.

Activity of this protein

NSP13 is a highly active enzyme that plays a critical role in the replication of the coronavirus. Its main function is to unwind the double-stranded RNA that makes up the viral genome. This is achieved through the use of ATP, which is hydrolyzed by NSP13 to provide the energy needed for the unwinding process. Once the RNA is unwound, it can be used as a template for the production of new viral RNA and proteins.

In addition to its helicase activity, NSP13 also has RNA triphosphatase and RNA 5′-triphosphatase activities. These activities are important for the capping of viral RNA, which is essential for the stability and translation of the viral RNA into proteins. NSP13 also has a nucleoside triphosphatase activity, which is involved in the hydrolysis of nucleoside triphosphates, such as ATP, to provide the energy needed for viral replication.

Application of NSP13

Due to its crucial role in the replication of the coronavirus, NSP13 has become a potential target for antiviral drugs. In fact, several studies have already identified NSP13 as a promising target for drug development. For example, a recent study published in the journal Nature Communications found that a small molecule inhibitor of NSP13 was able to inhibit the replication of SARS-CoV-2, the virus responsible for COVID-19.

In addition to its potential as a drug target, NSP13 is also being studied for its potential as a diagnostic tool. Antibodies against NSP13 have been found in the blood of COVID-19 patients, indicating that it could be used as a biomarker for the disease. This could be particularly useful in cases where other diagnostic methods, such as PCR tests, are not available or are producing false-negative results.

Furthermore, NSP13 is also being studied as a potential antigen for the development of COVID-19 vaccines. Vaccines work by exposing the body to a harmless version of a virus or a part of the virus, such as a viral protein, in order to stimulate the production of antibodies and immune cells that can protect against future infections. NSP13, being a key component of the coronavirus, could be a potential candidate for a vaccine antigen.

In conclusion, NSP13 is a crucial component of the coronavirus replication complex, with a highly active helicase enzyme that is essential for viral replication. Its structure and activity make it a potential target for antiviral drugs, a diagnostic biomarker for COVID-19, and a potential antigen for vaccine development. Further research on NSP13 is needed to fully understand its role in the coronavirus life cycle and to develop effective treatments and preventive measures against COVID-19.

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