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Updated: May 3, 2026

Identification of Growth Inhibition Phenotypes Induced by Expression of Bacterial Type III Effectors in Yeast
Published on: March 30, 2010
Mechanisms and biological roles of contact-dependent growth inhibition systems
Christopher S Hayes1, Sanna Koskiniemi, Zachary C Ruhe
1Department of Molecular, Cellular and Developmental Biology, University of California, Santa Barbara, Santa Barbara, California 93106-9625.
Abstract:
Bacterial contact-dependent growth inhibition (CDI) is mediated by the CdiA/CdiB family of two-partner secretion proteins. CDI(+) cells bind to susceptible target bacteria and deliver a toxic effector domain derived from the carboxyl terminus of CdiA (CdiA-CT). More than 60 distinct CdiA-CT sequence types have been identified, and all CDI toxins characterized thus far display RNase, DNase, or pore-forming activities. CDI systems also encode CdiI immunity proteins, which specifically bind and inactivate cognate CdiA-CT toxins to prevent autoinhibition. CDI activity appears to be limited to target cells of the same species, suggesting that these systems play a role in competition between closely related bacteria. Recent work on the CDI system from uropathogenic Escherichia coli (UPEC 536) has revealed that its CdiA-CT toxin binds tightly to a cysteine biosynthetic enzyme (CysK) in the cytoplasm of target cells. The unanticipated complexity in the UPEC CDI pathway raises the possibility that these systems perform other functions in addition to growth inhibition. Finally, we propose that the phenomenon of CDI is more widespread than previously appreciated. Rhs (rearrangement hotspot) systems encode toxin-immunity pairs, some of which share significant sequence identity with CdiA-CT/CdiI proteins. A number of recent observations suggest that Rhs proteins mediate a distinct form of CDI.
Insights
Bacterial contact-dependent growth inhibition (CDI) systems use toxins to eliminate competing bacteria. New research suggests these systems, including Rhs proteins, are more widespread and complex than previously thought.
Area of Science:
- Microbiology
- Bacterial genetics
- Molecular biology
Background:
- Bacterial contact-dependent growth inhibition (CDI) is mediated by CdiA/CdiB two-partner secretion systems.
- CDI systems deliver toxic effector domains (CdiA-CT) to inhibit target bacteria, with over 60 CdiA-CT types identified.
- Immunity proteins (CdiI) prevent self-inhibition by neutralizing cognate toxins.
Purpose of the Study:
- To explore the functional diversity and prevalence of bacterial CDI systems.
- To investigate the novel interactions and potential functions of CDI systems beyond growth inhibition.
- To examine the relationship between CDI and Rhs (rearrangement hotspot) systems.
Main Methods:
- Bioinformatic analysis of CdiA-CT and CdiI protein sequences.
- Characterization of the UPEC 536 CDI system's interaction with target cell components.
- Comparative analysis of CDI and Rhs system components.
Main Results:
- Over 60 distinct CdiA-CT types exhibit RNase, DNase, or pore-forming activities.
- The UPEC 536 CdiA-CT toxin targets the cysteine biosynthetic enzyme CysK.
- Rhs systems share sequence similarities with CDI components, suggesting a related mechanism.
Conclusions:
- CDI systems are involved in inter-bacterial competition, primarily within species.
- The UPEC CDI pathway exhibits unexpected complexity, hinting at additional functions.
- CDI mechanisms are likely more widespread, potentially involving Rhs systems.
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