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Mycobacterium tuberculosis Hsp16.3 nonamers are assembled and re-assembled via trimer and hexamer intermediates
Abuduaini Abulimiti1, Xinmiao Fu, Liangcai Gu
1Department of Biological Science and Biotechnology, School of Life Science, Tsinghua University, Beijing 100084, People's Republic of China.
Abstract:
Hsp16.3, a small heat shock protein from Mycobacterium tuberculosis proposed to form specific trimer-of-trimers structures, acts as a molecular chaperone in vitro. The assembly and re-assembly mechanisms of this oligomeric protein were studied and compared using in vitro transcription/translation and denaturization/renaturization systems. Analysis using a combination of non-denaturing pore gradient polyacrylamide gel electrophoresis, chemical cross-linking, and size-exclusion chromatography demonstrate that the predominant form of Hsp16.3 produced in the in vitro transcription/translation system is the trimer, which can be further assembled into a nonameric structure via a hexamer intermediate in the presence of purified exogenous Hsp16.3 proteins. Meanwhile, an "inert" Hsp16.3 dimer, which does not seem to participate in nonamer assembly but may be involved in forming other forms of Hsp16.3, was also detected in the in vitro expression system. On the other hand, our current data clearly show that the re-assembly of Hsp16.3 nonamers also occurs via a very similar mechanism, with the formation of trimers and hexamers. The presence of high levels of macromolecular crowding protein agent in the in vitro expression system promoted the formation of the nonamers to a very limited degree, indicating that the assembly of proteins like Hsp16.3 may depend mainly on its own concentration instead of those of the macromolecules in the environment.
Insights
Mycobacterium tuberculosis Hsp16.3 (Heat Shock Protein 16.3) forms trimers and nonamers in vitro. Assembly and re-assembly mechanisms are similar, primarily driven by protein concentration, not macromolecular crowding.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Hsp16.3 from Mycobacterium tuberculosis is a small heat shock protein.
- It is proposed to form specific trimer-of-trimers structures.
- Hsp16.3 functions as a molecular chaperone in vitro.
Purpose of the Study:
- To investigate the assembly and re-assembly mechanisms of Hsp16.3.
- To compare these mechanisms in different in vitro systems.
- To understand the role of protein concentration and macromolecular crowding in Hsp16.3 oligomerization.
Main Methods:
- In vitro transcription/translation systems.
- Denaturation/renaturation systems.
- Non-denaturing pore gradient polyacrylamide gel electrophoresis, chemical cross-linking, and size-exclusion chromatography.
Main Results:
- The predominant form of Hsp16.3 in vitro transcription/translation is the trimer.
- Trimers assemble into nonamers via a hexamer intermediate, especially with exogenous Hsp16.3.
- An inert dimer form of Hsp16.3 was also detected.
- Re-assembly of Hsp16.3 nonamers follows a similar pathway (trimer and hexamer formation).
- Macromolecular crowding had a limited effect on nonamer formation.
Conclusions:
- Hsp16.3 assembly and re-assembly mechanisms are similar, proceeding through trimer and hexamer intermediates.
- Oligomerization is primarily dependent on Hsp16.3 concentration rather than environmental macromolecular crowding.
- An inert dimer may play a role in other Hsp16.3 structures.