trigger plant defense responses and show a
significant ability to induce PAL activity in tomato
seedling leaves(Aitouguinane, et al., 2020). These
results help marine life as a potential biological
resource to protect plants from plant pathogens in the
context of ecologically sustainable green technology.
Studies have found that extracellular polysaccharides
are important pathogenic factors for some
pathogenic bacteria to cause lung infections. It is
well known that alginate exists in biofilms as a key
role in the failure of immunotherapy and antibiotic
therapy. In 2020, a study by wan et al. reported a new
silver nanocomposite, which is used to deliver drug
compounds, alginate lyase and ceftazidime. Due to
the principle of alginate degradation of alginate
lyase, it has a strong inhibition and degradation effect
on the Pseudomonas aeruginosa PAO1, and it can
also eradicate Pseudomonas aeruginosa in the lung
to achieve the purpose of treatment(Wan, 2020).
With the consumption of petroleum and other
non-renewable energy, the development of new
clean energy has been put on the agenda. There have
been many articles reporting from alginate. The main
principle of the research progress in the preparation
of bioethanol from alginate is to prepare bioethanol
through the synergistic action of the alginate lyase
endonuclease and exonuclease and continuous
reaction saccharification of alginate.
4 CONCLUSION
Alginate lyases have become new tool enzymes
because of its unique biological activity and high
efficiency, clean and controllable properties.
Recently, the research on alginate lyases have
gradually shifted from the early description of its
characteristics to the biological study of its
mechanism. Meanwhile, with the rapid development
of molecular biology, a variety of alginate lyase
genes can be cloned, sequenced and selected for
heterologous expression to construct efficient
engineering strains. It can be predicted that the
application of alginate lyases will be more and more
extensive in the future.
ACKNOWLEDGMENTS
This work was supported by the Key Technology
Research and Development Program of Shandong
Province [grant numbers 2019QYTPY024,
2019YYSP019]; Key Technology Research and
Development Program of China [grant number 2020-
CXY45]; Spring Industry Leader Talent Support
Plan [grant numbers 2017035, 2019042]; Shandong
Taishan Leading Talent Project [grant numbers
LJNY202015, tscy20180507]; Shandong Provincial
Natural Science Foundation (No. ZR2020QC008);
and Science, Education, and Industry Integration
Innovation pilot project at Qilu University of
Technology (Shandong Academy of Sciences) [grant
numbers 2020KJC-YJ01, 2020KJC-GH10].
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