Related Experiment Video
Updated: Feb 21, 2026

Author Spotlight: Advancing Antibiotic Resistance Research Using an Efflux-Deficient Bacterial Strain and a Single-Copy Gene Expression System
Published on: January 5, 2024
Characterization of the DNA mismatch repair proteins MutS and MutL in a hypermutator Acinetobacter baumannii
Behnaz Deihim1, Malihe Hassanzadeh2, Nazanin Zahra Shafiei-Jandaghi3
1Division of Microbiology, Department of Pathobiology, School of Public Health, Tehran University of Medical Sciences, Tehran, Iran.
Abstract:
Mutations of mutS and mutL genes have been linked with the emergence of hypermutator (HPM) phenotype in several bacteria. Nevertheless, there is scarce evidence that these mutations occurred in HPM Acinetobacter baumannii, therefore, it remains unknown whether the mutations located in domains mediating the functions of MutS and MutL. To address this information gap, the nucleotide sequences of mutS and mutL were characterized and their mutations were identified. Additionally, we proposed in silico models of mutated proteins and analyzed the secondary and tertiary structures, and the interaction interfaces of MutL and MutS. The HPM A. baumannii and a wild-type strain were subjected to PCR amplification of full length mutS and mutL, cloning, and sequencing. Following several reads of both strands of each gene and sequence assembly, the mutations were identified. Thereafter, the three-dimensional (3-D) structure of A. baumannii ATCC 19606 was developed and utilized as a template for homology modeling of the mutated amino acid sequences using the Phyre2 and I-TASSER, VMD 1.9.3, LigPlus v.1.4.5, PyMOL v.0.99 software. Regardless of silent mutations (n = 43), 11 missense mutations were identified in the MutS domains of HPM strain such as A4T, T272S, D278N in N-terminus, connector, and core domains, respectively. Three mutations -I357T, A408S, N447S- and 16 silent mutations were observed in MutL. Secondary structure prediction of MutS revealed that the amount of alpha helices, beta sheets, and coils in HPM were 35, 29, and 63, respectively, while these values were 36, 28, and 63 for A. baumannii ATCC 19606 as non mutator. In the case of MutL, for both HPM and non-mutator, 20, 21, and 39 of complete protein were alpha helices, beta sheets, and coils, respectively. Superimposition of structures of MutS of HPM on non-mutator revealed that T272, D278, G457, S528, A533, Y715, and E747 are closely matched with S272, D278, A457, P528, V533, C715, and K747, respectively in non-mutator strain. When the structure of MutL model in HPM was superimposed on its counterpart in non-mutator, all but residues S447, S408, and T357 were identical. Many mutations along the mutS and mutL were noted, but most of the mutations were observed in the interaction interfaces of MutS and MutL. Other substitutions were predominantly detected in C-terminus of MutS that may lead to reduced ATP binding and hydrolysis. Three substitution mutations were adjacent to C-terminus of MutL and are raising the suggestion of reduction in MutL dimerization. It seems that a combination of these mutations is implicated in increased mutation frequency and accordingly emergence of HPM strain.
Insights
Mutations in mutS and mutL genes drive the hypermutator (HPM) phenotype in Acinetobacter baumannii. These mutations, particularly in interaction interfaces, affect protein function and increase mutation frequency, leading to HPM emergence.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Mutations in mutS and mutL genes are associated with the hypermutator (HPM) phenotype in bacteria.
- Limited evidence exists for these mutations in HPM *Acinetobacter baumannii*, leaving functional domains of MutS and MutL proteins uncharacterized in this context.
Purpose of the Study:
- To investigate mutations in the *mutS* and *mutL* genes of HPM *Acinetobacter baumannii*.
- To analyze the in silico structural and functional impacts of identified mutations on MutS and MutL proteins.
Main Methods:
- PCR amplification, cloning, and sequencing of *mutS* and *mutL* genes from HPM and wild-type *A. baumannii* strains.
- Homology modeling of mutated MutS and MutL proteins using Phyre², I-TASSER, and other structural analysis software.
- Analysis of secondary and tertiary protein structures, including interaction interfaces and potential effects on ATP binding and dimerization.
Main Results:
- Eleven missense mutations were identified in MutS domains (N-terminus, connector, core) and three in MutL of HPM *A. baumannii*.
- Structural analysis revealed mutations primarily located at interaction interfaces of MutS and MutL proteins.
- Substitutions in the MutS C-terminus may impair ATP binding/hydrolysis, while MutL mutations near the C-terminus could reduce dimerization.
Conclusions:
- Identified mutations in *mutS* and *mutL* genes are strongly implicated in the HPM phenotype of *Acinetobacter baumannii*.
- Mutations affecting interaction interfaces, ATP binding, and dimerization likely contribute to the observed increase in mutation frequency.
- This study provides crucial insights into the molecular mechanisms underlying HPM emergence in *A. baumannii*.
Related Concept Videos
Mismatch Repair
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Mutations in Microorganisms
Other Unique Bacteria
Translesion DNA Polymerases
TLS polymerases are found in all three domains of life - archaea, bacteria, and eukaryotes. Of the different classes of TLS polymerases, members of the Y family are fitted with specialized structures that...
Spontaneous and Induced Mutations

