Covid-19 Research

Research Article

OCLC Number/Unique Identifier: 9032567174

Primary Prevention of New Pandemic and Biomimetic-Based Adaptation to Situation Connected with COVID-19 Pandemic

Biology Group    Start Submission

Jan W Dobrowolski*, Zbigniew W Wolkowski and Tadeusz Zaba

Volume1-Issue5
Dates: Received: 2020-08-05 | Accepted: 2020-09-09 | Published: 2020-09-10
Pages: 133-140

Abstract

Acceleration of worldwide infection with mutant of coronavirus SARS CoV-19 require new paradigmatic of human activity based on negative feed-back system following basic mechanism of Homeostasis of all living organisms and ecosystems. Condition of efficient primary prevention is better integration of cooperation of interdisciplinary teams of experts, knowledge-based society and decision-makers on local scale with working global network focused on common action for efficient protection against contamination of the Human environment with mutagens for reduction risk of incidence new mutants [Ex: Coronaviruses and new pandemics]. Key factor for primary prevention is reduction at the sources emission of immune suppressors, carcinogens and teratogens. Efficient prevention is depended on without delay worldwide introduction of complementary good practice in innovative environmental biotechnology integrated with ecological engineering and circular bioeconomy-driven sustainable development adopted to different kind of regions. Let us recommend heuristic approach, better financial support of transdisciplinary innovative basic and research-developing studies, improvement application of new IT tools for speed dissemination of scientific and technical progress, elimination of bureaucratic barriers and progress in distance problem-solving training and lifelong learning focused on sustainable, knowledge-based society selecting decision-makers with proper imagination and responsibility. Introduction on wider scale innovative biotechnologies [Ex: Recommended by our team modern environmental ecological engineering integrated with renewable sources of energy, laser biotechnology for better adaptation to climate change, aquaculture, apiculture etc.] focused on better prevention against contamination of the air, water and food; would be beneficial for environmental health. It would be also useful for creation in the near future many green jobs all over the world and for reduction risk of unemployment and hunger. International action for greening cities adopted to climate change could be supported by introduction of proposed new generation of eco-buildings and green habitats. The most important eco-innovation would be designing and construction underground centres integrating innovative biotechnologies for waster, wastes management to biogas; useful for also underground greenhouses for wide scale hydroponic production pollutants-free vegetables, mushrooms, supported by laser biotechnology, apiculture and aquaculture.

Such life-supporting system would be following ecosystems structure and function as new contribution to circular bioeconomy, especially useful for big cities. In the case of new epidemic, self-supporting in water and food green-habitats; could be more efficient in protection inhabitants against infectors. Taking into consideration synergistic effects of chemical, physical, biological pollutants of the human environment as well as impact of immune suppressors decreasing resistance of humans to infections and carcinogenic effects; is necessary for proper evaluation of existing health hazard as well as for prognostic study and efficient primary prevention against risk of new pandemics.

FullText HTML FullText PDF DOI: 10.37871/jels1131


Certificate of Publication




Copyright

2020 Dobrowolski JW, et al. Distributed under Creative Commons CC-BY 4.0

How to cite this article

Dobrowolski JW, Wolkowski ZW, Zaba T. Primary Prevention of New Pandemic and Biomimetic-Based Adaptation to Situation Connected with COVID-19 Pandemic. J Biomed Res Environ Sci. 2020 Sep 10; 1(5): 133-140. doi: 10.37871/jels1131, Article ID: jels1131


Subject area(s)

University/Institute

References


  1. Dobrowolski JW, Fukushima Y. New aspects of environmental protection against developmental malformations and the cancer incidence. Science for Better Environment. 1976; 517-528. https://tinyurl.com/yy354g2h
  2. Wolkowski ZW. Synergy and coherence in biological systems, proceedings of a transdisciplinary seminar at the University of Paris, 1983-1988, 1988 Library of Congress, Bibliotheque Nationale de France, British Library, National Library of Poland. 1998. https://tinyurl.com/y6a5d22a
  3. Dobrowolski JW. The polish initiatives. Naturopa. 1989; 61.
  4. Dobrowolski JW. Reflexions sur la qualite de Vie et la perennite de la civilisation contemporaine. Da Lage A, Amant J-P. Ellipses, Paris, 2008; 167-180.
  5. Coulston F, Korte F. Environmental quality and safety, Academic Press, Stuttgart. 1976.
  6. Dobrowolski JW. Global environmental problems and local action for sustainable development. Proceedings of the international conference on promotion sustainable development on global scale in the context of the forthcoming earth summit, Euro Eco 2002, AGH University of Science and Technology, Krakow.
  7. Dobrowolski JW, Guha AS. Open University and modern distance learning in Poland and India for sustainable development. Geomatics and Environmental Engineering. 2011; 18: 26-35. https://tinyurl.com/yxmud9mg
  8. Dobrowolski JW, Kobylarczyk J Wagner A, Mazur R. Involving diverse stakeholders for sustainable development; some learning experiences from areas Poland, In; Optimizing open and distance learning in higher education institutions. IGI Global. 2017.
  9. Dobrowolski JW, Carioca JOB, Kobylarczyk J, Skrzynski T. Environmental effects of social corporate responsibility and lifelong learning, chapter in press in E-Handbook, Springer Nature. 2020.
  10. Dobrowolski JW. New laser biotechnology for bioremediation, biodegradation, carbon capture, environmental health and 44 years of environmental education [of experts and knowledge-based society] focused on sustainable development, Proc. of 1st World Congress Environmental Biotechnology, BIT, Dalian, China. 2011.
  11. Dobrowolski JW, Kobylarczyk J, Tursunov O, Toh SQ. Integration of local eco-innovation with global problems of protection of the natural environment and bio-based green economy. International Conference on Circuits and Systems (CAS 2015). Atlantis Press, 2015, 9: 25-28. DOI: https://doi.org/10.2991/cas-15.2015.7
  12. Vohora SB, Dobrowolski JW. Trace elements in health and disease, Hamdard Nagar University, New Delhi. 1990.
  13. Jan W Dobrowolski, SB Vohora, Kalpana Sharma, Shaukat A Shah, SAH Naqvi, PC Dandiya. Antibacterial, antifungial, anitiamoebic, antiinflammantry, and antipyretic Studies on bee products, Journal of Ethnopharmacology. 1991; 35; 77-83. DOI: https://doi.org/10.1016/0378-8741(91)90135-Z
  14. Dobrowolski JW, Smyk B. Environmental risk factors of cancer and their primary prevention. J Environ Pathol Toxicol Oncol. 1993; 12: 55-57. https://tinyurl.com/y5hnx3ww
  15. Dobrowolski JW, Budak A, Trojanowska D, Rymarczyk M, Macuda J. Laser stimulation of Trichophyton mentagrophytes for the enhancement biodegradation of hydrocarbons. EEMJ. 2012; 11: 1783-1788. https://tinyurl.com/y5ye9wxj
  16. Wigginton R, Boehm AB. Environmental engineers and scientists haw important roles to play in stemming outbreaks and pandemics caused by enveloped viruses. Environ Sci Technol. 2020; 54: 3736-3739. DOI: https://doi.org/10.1021/acs.est.0c01476
  17. Peter KCC, Derek AW, Louis KLT, Sin Ming, Angus CTL, Chi SL, et al. Viral shedding patterns with probable severe acute respiratory syndrome, Lancet. 2004; 363: 1699-1700. DOI: 10.1016/SO140-6736 (04) 16255-7.
  18. Yong Zhang, Cao Chen, Shuangli Zhu, Chang Shu, Dongyan Wang, et al. Isolation of 2019-nCoV from a stool specimen of a laboratory confirmed case of the Coronavirus Disease 2029 ( COVID-19), China CDC Weekly. 2020; 2: 123-124. https://tinyurl.com/y3rbrhsv
  19. Kai QK, Chee FY, Lin C, Raymond TPL, Tze MM, Matthias M, et al. A well infant with Coronavirus Disease 2019 (COVID-19) with high viral load. Clin Infect Dis. 2020; 71: 847-849. DOI: 10.1093/cia/ciaa 201.
  20. Wurtzer S, Marechal V, Mouchel JM, Moulin L. Time course quantitative detection of SARS-CoV-2 in Parisian wastewaters correlates with COVID-19 contaminated cases. 2020. DOI: https://doi.org/10.1101/2020.04.12.20062679.
  21. WHO, UNICEF, Water. Sanitation, hygiene and waste management for the COVID-19 virus. TechnicaL BRIEF. 2020; WHO. pp. 1-9. https://tinyurl.com/yxflygtu
  22. Kwinta E, Galina A, Uhl T, Malka P, Zaba T. Comparision of cost-effective control strategies of air blowers in wastewater treatment plants. Journal of Process Control. 2019.
  23. Podraza Z, DÄ…browska B, Zaba T. Measurement of hydrogen sulphide concentration in selected places of Sewage Treatment Plant Cracow Pleszow, Coference Proceedings. 2017.
  24. Bak J, Krolikowska J, Wasilkowska A, Zaba T. Electron Microscopy assessment of the Chemical composition of sediments from water supply pipes. 2017.


Comments


Swift, Reliable, and studious. We aim to cherish the world by publishing precise knowledge.

  • asd
  • Brown University Library
  • University of Glasgow Library
  • University of Pennsylvania, Penn Library
  • University of Amsterdam Library
  • The University of British Columbia Library
  • UC Berkeley’s Library
  • MIT Libraries
  • Kings College London University
  • University of Texas Libraries
  • UNSW Sidney Library
  • The University of Hong Kong Libraries
  • UC Santa Barbara Library
  • University of Toronto Libraries
  • University of Oxford Library
  • Australian National University
  • ScienceOpen
  • UIC Library
  • KAUST University Library
  • Cardiff University Library
  • Ball State University Library
  • Duke University Library
  • Rutgers University Library
  • Air University Library
  • UNT University of North Texas
  • Washington Research Library Consortium
  • Penn State University Library
  • Georgetown Library
  • Princeton University Library
  • Science Gate
  • Internet Archive
  • WashingTon State University Library
  • Dimensions
  • Zenodo
  • OpenAire
  • Index Copernicus International
  • icmje
  •  International Scientific Indexing (ISI)
  • Sherpa Romeo
  • ResearchGate
  • Universidad De Lima
  • WorldCat
  • JCU Discovery
  • McGill
  • National University of Singepore Libraries
  • SearchIT
  • Scilit
  • SemantiScholar
  • Base Search
  • VU
  • KB
  • Publons
  • oaji
  • Harvard University
  • sjsu-library
  • UWLSearch
  • Florida Institute of Technology
  • CrossRef
  • LUBsearch
  • Universitat de Paris
  • Technical University of Denmark
  • ResearchBIB
  • Google Scholar
  • Microsoft Academic Search