• 제목/요약/키워드: Oligopeptide transporter

검색결과 3건 처리시간 0.016초

Deletion of the oligopeptide transporter Lmo2193 decreases the virulence of Listeria monocytogenes

  • Li, Honghuan;Qiao, Yanjie;Du, Dongdong;Wang, Jing;Ma, Xun
    • Journal of Veterinary Science
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    • 제21권6호
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    • pp.88.1-88.13
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    • 2020
  • Background: Listeria monocytogenes is a gram-positive bacterium that causes listeriosis mainly in immunocompromised hosts. It can also cause foodborne outbreaks and has the ability to adapt to various environments. Peptide uptake in gram-positive bacteria is enabled by oligopeptide permeases (Opp) in a process that depends on ATP hydrolysis by OppD and F. Previously a putative protein Lmo2193 was predicted to be OppD, but little is known about the role of OppD in major processes of L. monocytogenes, such as growth, virulence, and biofilm formation. Objectives: To determine whether the virulence traits of L. monocytogenes are related to OppD. Methods: In this study, Lmo2193 gene deletion and complementation strains of L. monocytogenes were generated and compared with a wild-type strain for the following: adhesiveness, invasion ability, intracellular survival, proliferation, 50% lethal dose (LD50) to mice, and the amount bacteria in the mouse liver, spleen, and brain. Results: The results showed that virulence of the deletion strain was 1.34 and 0.5 orders of magnitude higher than that of the wild-type and complementation strains, respectively. The function of Lmo2193 was predicted and verified as OppD from the ATPase superfamily. Deletion of lmo2193 affected the normal growth of L. monocytogenes, reduced its virulence in cells and mice, and affected its ability to form biofilms. Conclusions: Deletion of the oligopeptide transporter Lmo2193 decreases the virulence of L. monocytogenes. These effects may be related to OppD's function, which provides a new perspective on the regulation of oligopeptide transporters in L. monocytogenes.

Oligopeptide transporter 관여 유전자 도입 형질전환벼의 고온스트레스 내성 증진 (Overexpression of an oligopeptide transporter gene enhances heat tolerance in transgenic rice)

  • 정은주;송재영;유달아;김미선;정유진;강권규;박수철;조용구
    • Journal of Plant Biotechnology
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    • 제44권3호
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    • pp.296-302
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    • 2017
  • 지구온난화로 인해 온도 상승에 따른 고온 스트레스는 전세계 많은 지역에서 농업적으로 문제가 되어 세계 3대 곡물인 벼의 생산에 피해가 크게 나타나고 있다. 식물은 생장하면서 다양한 환경스트레스에 노출되며, 이러한 스트레스는 작물의 생장, 발달, 수확량 등에 영향을 미친다. 본 연구는 벼의 안정적인 생산성을 높이기 위해 벼 유래 OsOPT 유전자를 이용한 형질전환 후대에서 고온 조건하에서도 생육이 가능한 계통을 선발하여 그 특성을 살펴보았다. 먼저, OsOPT10 유전자 도입 형질전환 벼를 이용하여 고온 처리에 따른 저항성 계통을 선발하고, 선발된 계통의 생리적 특성을 분석하였으며, 분자적 특성을 qRT-PCR을 통해 유전자의 발현 양상을 분석하였다. 고온 스트레스에 의한 세포막 피해 정도를 알아보기 위해 전해질 누출(electrolyte leakage), 삼투조절제 역할을 하는 수용성 당 및 proline 함량 분석을 하여 대조구와 비교분석 하였다. 본 실험에서 고온 처리에 의한 가용성 당 함량의 변화는 OsOPT10-16 형질전환 벼를 제외하고 OsOPT10-1와 OsOPT10-7 계통이 WT 보다 당 함량이 높게 나타났다. 모품종 동진에 비해 형질전환 벼 계통의 EL 값이 낮게 나타난 것과 가용성 당 함량이 비슷하거나 높게 나타난 것으로 보아 OsOPT10 형질전환 벼가 고온 스트레스에서 저항성 반응을 나타낸 것으로 판단하였다.

Expression analysis and characterization of rice oligopeptide transport gene (OsOPT10) that contributes to salt stress tolerance

  • Jung, Yu-Jin;Lee, In-Hye;Han, Kyung-Hee;Son, Cho-Yee;Cho, Yong-Gu;Lee, Myung-Chul;Kang, Kwon-Kyoo
    • Journal of Plant Biotechnology
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    • 제37권4호
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    • pp.483-493
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    • 2010
  • Knock-out of a gene by insertional mutagenesis is a direct way to address its function through the mutant phenotype. Among ca. 15,000 gene-trapped Ds insertion lines of rice, we identified one line from selected sensitive lines in highly salt stress. We conducted gene tagging by TAIL-PCR, and DNA gel blot analysis from salt sensitive mutant. A gene encoding an oligopeptide transporter (OPT family) homologue was disrupted by the insertion of a Ds transposon into the OsOPT10 gene that was located shot arm of chromosome 8. The OsOPT10 gene (NP_001062118.) has 6 exons and encodes a protein (752 aa) containing the OPT family domain. RT-PCR analysis showed that the expression of OsOPT10 gene was rapidly and strongly induced by stresses such as high-salinity (250 mM), osmotic, drought, $100\;{\mu}M$ ABA. The subcellular localization assay indicated that OsOPT10 was localized specifically in the plasma membrane. Overexpression of OsOPT10 in Arabidopsis thaliana and rice conferred tolerance of transgenic plants to salt stress. Further we found expression levels of some stress related genes were inhibited in OsOPT10 transgenic plants. These results suggested that OsOPT10 might play crucial but differential roles in plant responses to various abiotic stresses.