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Related Concept Videos

Gram-negative Bacterial Protein Secretion Systems01:17

Gram-negative Bacterial Protein Secretion Systems

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Gram-negative bacteria utilize sophisticated protein secretion systems to transport proteins across their double-membrane envelope into the extracellular environment or host cells. Based on their mechanism of action, these systems are classified into one-step and two-step pathways.One-Step Secretion Systems (Types I, III, IV, and VI)One-step secretion systems bypass the periplasm entirely, forming a continuous channel that spans both the inner and outer membranes:Type I Secretion System (T1SS):...
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Secretory vesicles, also known as dense core vesicles (DCVs), are membrane-bound vesicles that transport secretory proteins, such as hormones or neurotransmitters. Regulated secretory vesicles transport proteins from the trans-Golgi network to the exterior of the cell. Proteins present in regulated secretory vesicles are required to be rapidly exocytosed in large amounts upon a specific stimulus.
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Groups of proteins may form a complex where each protein in this complex has a different role in the overall execution of the complex’s function. Often some of the proteins in the complex can be replaced by a closely related variant to give a complex that contains many of the same components yet is functionally distinct.
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Bacterial protein secretion involves translocation systems to ensure proteins reach their designated locations, including the plasma membrane, periplasm, outer membrane, or the external environment. These translocation systems are vital for bacterial physiology, supporting processes like membrane assembly, enzymatic activity in the periplasm, and interactions with the external environment. The division of labor between Sec and Tat pathways ensures efficiency in handling proteins with diverse...
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Related Experiment Video

Updated: Jun 7, 2025

Conjugative Mating Assays for Sequence-specific Analysis of Transfer Proteins Involved in Bacterial Conjugation
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T4Seeker: a hybrid model for type IV secretion effectors identification.

Jing Li1,2,3, Shida He2,4,5, Jian Zhang2

  • 1Department of Microbiology, University of Hong Kong, Hong Kong, China.

BMC Biology
|November 15, 2024
PubMed
Summary

T4Seeker accurately predicts type IV secretion effectors (T4SEs) using integrated features. This robust model outperforms existing methods, offering a valuable tool for T4SE research.

Keywords:
Evolutionary scale modelingFeature fusionLong short-term memoryType IV secretion effectors

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Area of Science:

  • Microbiology
  • Bacterial Pathogenesis
  • Bioinformatics

Background:

  • Type IV secretion systems (T4SS) are crucial in bacterial virulence, enabling effector protein secretion for host cell manipulation.
  • Key bacterial pathogens like Salmonella, E. coli, and H. pylori utilize T4SS for infection and communication disruption.
  • Type III and type VI secretion effectors were employed as negative controls in model training.

Purpose of the Study:

  • To develop and validate a highly accurate predictive model for identifying type IV secretion effectors (T4SEs).
  • To enhance the prediction of T4SEs by integrating diverse feature sets.
  • To establish a robust computational tool for advancing T4SE research.

Main Methods:

  • Development of T4Seeker, a novel prediction model for T4SEs.
  • Integration of traditional biological features with large language model-derived features.
  • Rigorous model validation using independent test sets and comparison with existing methods.

Main Results:

  • T4Seeker achieved high predictive performance with an Area Under the Curve (AUC) of 0.947 on the validation set and 0.970 on the independent test set.
  • The model demonstrated superior predictive ability compared to classic and state-of-the-art T4SE identification approaches.
  • The integration of multi-level features contributed to T4Seeker's enhanced accuracy and robustness.

Conclusions:

  • The proposed T4Seeker model exhibits superior performance for T4SE prediction.
  • T4Seeker's strength lies in its integration of multi-level features, leading to high predictive accuracy and generalization.
  • This tool offers significant potential for future research into type IV secretion effectors.