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Related Concept Videos

Bacterial Phylum Cyanobacteria01:30

Bacterial Phylum Cyanobacteria

Cyanobacteria are a diverse group of oxygenic, phototrophic bacteria that played a pivotal role in converting Earth’s atmosphere from anoxic to oxygen-rich billions of years ago. They exhibit remarkable morphological diversity, ranging from unicellular forms to filamentous types, with cell sizes varying between 0.5 μm and 100 μm. Cyanobacteria are classified into five groups: Chroococcales (unicellular, dividing by binary fission), Pleurocapsales (unicellular, dividing by multiple fission),...

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Genetic Modification of Cyanobacteria by Conjugation Using the CyanoGate Modular Cloning Toolkit
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Genetic Modification of Cyanobacteria by Conjugation Using the CyanoGate Modular Cloning Toolkit

Published on: October 31, 2019

Current trends in high throughput proteomics in cyanobacteria.

Saw Yen Ow1, Phillip C Wright

  • 1Biological and Environmental Systems Group, ChELSI, Department of Chemical and Process Engineering, The University of Sheffield, Sheffield S1 3JD, UK.

FEBS Letters
|April 7, 2009
PubMed
Summary

Advancements in cyanobacterial research, particularly in proteomics, have yielded significant insights. This review assesses emerging quantitative methods and future challenges in the field.

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Looking Outwards: Isolation of Cyanobacterial Released Carbohydrate Polymers and Proteins
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Published on: May 27, 2019

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Genetic Modification of Cyanobacteria by Conjugation Using the CyanoGate Modular Cloning Toolkit
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Looking Outwards: Isolation of Cyanobacterial Released Carbohydrate Polymers and Proteins
06:58

Looking Outwards: Isolation of Cyanobacterial Released Carbohydrate Polymers and Proteins

Published on: May 27, 2019

Area of Science:

  • * Cyanobacterial research
  • * Proteomics
  • * Genomics

Background:

  • * Recent advancements in genome sequencing and high-throughput proteomics have spurred 13 publications on cyanobacteria.
  • * Studies have concentrated on key strains like Synechocystis, Nostoc, Anabaena, Prochlorococcus, and Euhalothece.

Purpose of the Study:

  • * To assess the implications of emerging quantitative aspects in large-scale cyanobacterial proteomics studies.
  • * To compare traditional and early high-throughput proteomic analyses.
  • * To identify future trends and challenges in cyanobacterial research.

Main Methods:

  • * Review of 13 published reports on cyanobacterial genome sequencing and high-throughput proteomics.
  • * Comparative analysis of traditional and advanced proteomic methodologies.
  • * Synthesis of current trends and expert opinions on future directions.

Main Results:

  • * Successful application of high-throughput proteomics in diverse cyanobacterial strains.
  • * Emergence of quantitative aspects in large-scale proteomic studies.
  • * Identification of key research areas and strains (Synechocystis, Nostoc, Anabaena, Prochlorococcus, Euhalothece).

Conclusions:

  • * The synergy between proteomics and cyanobacterial research is crucial for advancing both technical and biological understanding.
  • * Future efforts should focus on integrating quantitative proteomics to overcome current challenges.
  • * Continued research is needed to fully exploit the potential of cyanobacteria.