Biotechnology for propagation and secondary metabolite production in Bacopa monnieri.

Abhijit Dey, Rupa Sanyal, Saheli Nandi, Sharmila Pandey, Ujani Chatterjee, Tulika Mishra, Sutapa Datta, Dorairaj Arvind Prasanth, Uttpal Anand, Abhijit Bhagwan Mane, Nishi Kant, Niraj Kumar Jha, Saurabh Kumar Jha, Mahipal S Shekhawat, Devendra Kumar Pandey

Journal: Applied microbiology and biotechnology 2022;106(5-6):1837-1854

PMID: 35218388

Abstract

Bacopa monnieri (L.) Wettst. or water hyssop commonly known as "Brahmi" is a small, creeping, succulent herb from the Plantaginaceae family. It is popularly employed in Ayurvedic medicine as a nerve tonic to improve memory and cognition. Of late, this plant has been reported extensively for its pharmacologically active phyto-constituents. The main phytochemicals are brahmine, alkaloids, herpestine, and saponins. The saponins include bacoside A, bacoside B, and betulic acid. Investigation into the pharmacological effect of this plant has thrived lately, encouraging its neuroprotective and memory supporting capacity among others. Besides, it possesses many other therapeutic activities like antimicrobial, antioxidant, anti-inflammatory, gastroprotective properties, etc. Because of its multipurpose therapeutic potential, it is overexploited owing to the prioritization of natural remedies over conventional ones, which compels us to conserve them. B. monnieri is confronting the danger of extinction from its natural habitat as it is a major cultivated medico-botanical and seed propagation is restricted due to less seed availability and viability. The ever-increasing demand for the plant can be dealt with mass propagation through plant tissue culture strategy. Micropropagation utilizing axillary meristems as well as de novo organogenesis have been widely investigated in this plant which has also been explored for its conservation and production of different types of secondary metabolites. Diverse in vitro methods such as organogenesis, cell suspension, and callus cultures have been accounted for with the aim of production and/or enhancement of bacosides. Direct shoot-organogenesis was initiated in excised leaf and internodal explants without any exogenous plant growth regulator(s) (PGRs), and the induction rate was improved when exogenous cytokinins and other supplements were used. Moreover, biotechnological toolkits like Agrobacterium-mediated transformation and the use of mutagens have been reported. Besides, the molecular marker-based studies demonstrated the clonal fidelity among the natural and in vitro generated plantlets also elucidating the inherent diversity among the natural populations. Agrobacterium-mediated transformation system was mostly employed to optimize bacoside biosynthesis and heterologous expression of other genes. The present review aims at depicting the recent research outcomes of in vitro studies performed on B. monnieri which include root and shoot organogenesis, callus induction, somatic embryogenesis, production of secondary metabolites by in vitro propagation, acclimatization of the in vitro raised plantlets, genetic transformation, and molecular marker-based studies of clonal fidelity. KEY POINTS: • Critical and up to date records on in vitro propagation of Bacopa monnieri • In vitro propagation and elicitation of secondary metabolites from B. monnieri • Molecular markers and transgenic studies in B. monnieri.

© 2022. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

Address: Department of Botany, Bhairab Ganguly College (affiliated to West Bengal State University), Feeder Road, Belghoria, Kolkata, 700056, West Bengal, India.; Department of Botany, Deen Dayal Upadhyay Gorakhpur University, Gorakhpur, Uttar Pradesh, 273009, India.; Department of Zoology, Bethune College, Kolkata (affiliated to University of Calcutta), Kolkata, West Bengal, 700006, India.; Department of Microbiology, School of Biosciences, Periyar University, Salem, 636011, Tamilnadu, India.; Department of Life Sciences, Ben-Gurion University of the Negev, 84105, Beer-Sheva, Israel.; Department of Zoology, Dr. Patangrao Kadam Mahavidyalaya, Sangli (affiliated to Shivaji University of Kolhapur), Sangli, Maharashtra, 416308, India.; Department of Biotechnology, School of Health and Allied Science, ARKA Jain University, Jamshedpur, 832108, Jharkhand, India.; Department of Biotechnology, School of Engineering & Technology (SET), Sharda University, 201310, Greater Noida, Uttar Pradesh, India.; Plant Biotechnology Unit, Kanchi Mamunivar Government Institute for Postgraduate Studies and Research, Puducherry, 605 008, India.; Department of Biotechnology, Lovely Professional University, Phagwara, 144402, Punjab, India. [email protected].; Department of Life Sciences, Presidency University, 86/1 College Street, Kolkata, 700073, West Bengal, India. [email protected].

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