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Methanococci use the diaminopimelate aminotransferase (DapL) pathway for lysine biosynthesis
Yuchen Liu1, Robert H White, William B Whitman
1Department of Microbiology, University of Georgia, Athens, GA 30602, USA.
Abstract:
The pathway of lysine biosynthesis in the methanococci has not been identified previously. A variant of the diaminopimelic acid (DAP) pathway uses diaminopimelate aminotransferase (DapL) to catalyze the direct conversion of tetrahydrodipicolinate (THDPA) to ll-DAP. Recently, the enzyme DapL (MTH52) was identified in Methanothermobacter thermautotrophicus and shown to belong to the DapL1 group. Although the Methanococcus maripaludis genome lacks a gene that can be unambiguously assigned a DapL function based on sequence similarity, the open reading frame MMP1527 product shares 30% amino acid sequence identity with MTH52. A Deltammp1527 deletion mutant was constructed and found to be a lysine auxotroph, suggesting that this DapL homolog in methanococci is required for lysine biosynthesis. In cell extracts of the M. maripaludis wild-type strain, the specific activity of DapL using ll-DAP and alpha-ketoglutarate as substrates was 24.3 + or - 2.0 nmol min(-1) mg of protein(-1). The gene encoding the DapL homolog in Methanocaldococcus jannaschii (MJ1391) was cloned and expressed in Escherichia coli, and the protein was purified. The maximum activity of MJ1391 was observed at 70 degrees C and pH 8.0 to 9.0. The apparent K(m)s of MJ1391 for ll-DAP and alpha-ketoglutarate were 82.8 + or - 10 microM and 0.42 + or - 0.02 mM, respectively. MJ1391 was not able to use succinyl-DAP or acetyl-DAP as a substrate. Phylogenetic analyses suggested that two lateral gene transfers occurred in the DapL genes, one from the archaea to the bacteria in the DapL2 group and one from the bacteria to the archaea in the DapL1 group. These results demonstrated that the DapL pathway is present in marine methanogens belonging to the Methanococcales.
Insights
The diaminopimelic acid (DAP) pathway, essential for lysine biosynthesis in methanococci, was identified using the DapL enzyme. This study confirms the presence of the DapL pathway in marine methanogens, revealing insights into microbial metabolism.
Area of Science:
- Microbiology
- Biochemistry
- Genetics
Background:
- The lysine biosynthesis pathway in methanococci remained uncharacterized.
- A variant diaminopimelic acid (DAP) pathway utilizes diaminopimelate aminotransferase (DapL) for direct tetrahydrodipicolinate (THDPA) to ll-DAP conversion.
- The DapL enzyme (MTH52) from Methanothermobacter thermautotrophicus belongs to the DapL1 group.
Purpose of the Study:
- To identify the lysine biosynthesis pathway in methanococci.
- To investigate the role of the MMP1527 gene product in Methanococcus maripaludis.
- To characterize the DapL homolog in Methanocaldococcus jannaschii.
Main Methods:
- Construction of a Deltammp1527 deletion mutant in M. maripaludis.
- Enzyme activity assays of M. maripaludis cell extracts.
- Cloning, expression, and purification of the MJ1391 gene product from M. jannaschii in E. coli.
- Enzyme kinetics and phylogenetic analysis.
Main Results:
- The Deltammp1527 mutant displayed lysine auxotrophy, indicating MMP1527's essential role in lysine biosynthesis.
- M. maripaludis DapL exhibited specific activity of 24.3 ± 2.0 nmol/min/mg protein.
- The characterized M. jannaschii DapL (MJ1391) showed optimal activity at 70°C and pH 8.0-9.0, with specific kinetic parameters.
- Phylogenetic analysis suggested two lateral gene transfer events involving DapL genes between archaea and bacteria.
Conclusions:
- The DapL pathway is essential for lysine biosynthesis in methanococci.
- The study confirms the presence and function of the DapL pathway in marine methanogens of the Methanococcales order.
- Evidence of lateral gene transfer provides evolutionary insights into microbial metabolic pathways.
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