Pollination research in India: Current status, future vision and conservation implications

Arjun Adit , Vineet Kumar Singh , Rajesh Tandon , Kundaranahalli Ramalingaiah Shivanna

Integrative Conservation ›› 2024, Vol. 3 ›› Issue (4) : 330 -341.

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Integrative Conservation ›› 2024, Vol. 3 ›› Issue (4) : 330 -341. DOI: 10.1002/inc3.74
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Pollination research in India: Current status, future vision and conservation implications

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Abstract

Pollination is a dynamic ecological interaction, that has evolved to promote the survival and reproductive success of flowering plants and their pollinators. Human-induced environmental changes in recent decades have reduced the density and diversity of pollinators and have resulted in a global pollinator crisis. Western countries have realized this problem since the beginning of this century and extensive research has been going on to study pollinators and pollination in both wild and crop species. To mitigate the crisis, considerable success has been achieved in these countries. In India, investigations on plantpollinator interaction, as well as global pollinator-crisis have received very little attention in spite of its rich biodiversity. So far, the contribution from the Indian region towards pollination biology is merely 5% of the world. This review summarizes limited data available on pollination ecology, analyses possible reasons for this situation, highlights the importance of initiating serious studies on pollinators and pollination and provides a roadmap. It is concluded that a collaborative initiative involving the scientific community, society and policymakers is a prerequisite to achieve the objectives of biodiversity conservation and crop productivity in the country.

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conservation / crop productivity / flowering plants / native pollinators / pollination ecology / pollination services / sustainability

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Arjun Adit, Vineet Kumar Singh, Rajesh Tandon, Kundaranahalli Ramalingaiah Shivanna. Pollination research in India: Current status, future vision and conservation implications. Integrative Conservation, 2024, 3(4): 330-341 DOI:10.1002/inc3.74

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References

[1]

Abrol, D.P. (2012) Wild bees and crop pollination. In: D.P. Abrol (Ed.) Pollination biology: Biodiversity conservation and agricultural production. Dordrecht: Springer, pp. 111-184.

[2]

Abrol, D.P. (2023) Beekeeping for sustainable economic development of India: challenges and opportunities. Journal of the Indian Institute of Science, 103, 997-1017.

[3]

Abrol, D.P., Sharma, D., Shankar, U. & Chatterjee, D. (2015) Apiculture development in India with special reference to Jammu & Kashmir-challenges and opportunities. In: A.J.S. Raju (Ed.) Advances in pollen spore research. New Delhi: Today & Tomorrow’s Printers and Publishers, pp. 91-100.

[4]

Adit, A., Singh, V.K., Koul, M. & Tandon, R. (2022) Breeding system and response of the pollinator to floral larceny and florivory define the reproductive success in Aerides odorata. Frontiers in Plant Science, 12, 767725.

[5]

Aizen, M.A., Aguiar, S., Biesmeijer, J.C., Garibaldi, L.A., Inouye, D.W., Jung, C. et al. (2019) Global agricultural productivity is threatened by increasing pollinator dependence without a parallel increase in crop diversification. Global Change Biology, 25, 3516-3527.

[6]

Aizen, M.A. & Feinsinger, P. (2003) Bees not to be? Responses of insect pollinator faunas and flower pollination to habitat fragmentation. In: G.A. Bradshaw & P.A. Marquet (Eds.) How landscapes change: human disturbance and ecosystem fragmentation in the Americas. Berlin, Heidelberg: Springer, pp. 111-129.

[7]

Aluri, R.J.S. (1990) Studies on pollination ecology in India: a review. Proceedings of the Indian National Science Academy B, 56, 375-388.

[8]

Auteri, D., Arena, M., Barmaz, S., Ippolito, A., Linguadoca, A., Molnar, T. et al. (2017) Neonicotinoids and bees: the case of the European regulatory risk assessment. Science of the Total Environment, 579, 966-971.

[9]

Balbuena, M.S., Tison, L., Hahn, M.L., Greggers, U., Menzel, R. & Farina, W.M. (2015) Effects of sublethal doses of glyphosate on honeybee navigation. Journal of Experimental Biology, 218, 2799-2805.

[10]

Baron, G.L., Jansen, V., Brown, M. & Raine, N.E. (2017) Pesticide reduces bumblebee colony initiation and increases probability of population extinction. Nature Ecology & Evolution, 1, 1308-1316.

[11]

Barrett, S.C.H. (2010) Understanding plant reproductive diversity. Philosophical Transactions of the Royal Society, B: Biological Sciences, 365, 99-109.

[12]

Barrios, E., Valencia, V., Jonsson, M., Brauman, A., Hairiah, K., Mortimer, P.E. et al. (2018) Contribution of trees to the conservation of biodiversity and ecosystem services in agricultural landscapes. International Journal of Biodiversity Science, Ecosystem Services & Management, 14, 1-16.

[13]

Bartomeus, I., Ascher, J.S., Wagner, D., Danforth, B.N., Colla, S., Kornbluth, S. et al. (2011) Climate-associated phenological advances in bee pollinators and bee-pollinated plants. Proceedings of the National Academy of Sciences, 108, 20645-20649.

[14]

Basu, P., Bhattacharya, R. & Ianetta, P. (2011) A decline in pollinator dependent vegetable crop productivity in India indicates pollination limitation and consequent agro-economic crises. Nature Precedings, 1-9.

[15]

Bawa, K.S., Sengupta, A., Chavan, V., Chellam, R., Ganesan, R., Krishnaswamy, J. et al. (2021) Securing biodiversity, securing our future: a national mission on biodiversity and human well-being for India. Biological Conservation, 253, 108867.

[16]

Belzunces, L.P., Tchamitchian, S. & Brunet, J.L. (2012) Neural effects of insecticides in the honey bee. Apidologie, 43, 348-370.

[17]

Bhatt, J.R., Das, A.A. & Shanker, K. (2018) Biodiversity and climate change: an indian perspective. New Delhi, India: Ministry of Environment, Forest and Climate Change, Government of India.

[18]

Bhattacharya, R. & Basu, P. (2018) Pollinator limitation and crop production: experimental observations on few economically important vegetable crops in West bengal, India. Proceedings of the Zoological Society, 71, 88-91.

[19]

Biesmeijer, J.C., Roberts, S.P.M., Reemer, M., Ohlemüller, R., Edwards, M., Peeters, T. et al. (2006) Parallel declines in pollinators and insect-pollinated plants in Britain and the Netherlands. Science, 313, 351-354.

[20]

Bishop, J., Garratt, M.P.D. & Nakagawa, S. (2022) Animal pollination increases stability of crop yield across spatial scales. Ecology Letters, 25, 2034-2047.

[21]

Blüthgen, N. & Klein, A.M. (2011) Functional complementarity and specialisation: the role of biodiversity in plant-pollinator interactions. Basic and Applied Ecology, 12, 282-291.

[22]

Bradley, B.A., Oppenheimer, M. & Wilcove, D.S. (2009) Climate change and plant invasions: restoration opportunities ahead? Global Change Biology, 15, 1511-1521.

[23]

Burkle, L.A., Marlin, J.C. & Knight, T.M. (2013) Plant-pollinator interactions over 120 years: loss of species, co-occurrence, and function. Science, 339, 1611-1615.

[24]

Chakraborty, N., Mitra, R., Pal, S., Ganguly, R., Acharya, K., Minkina, T. et al. (2023) Biopesticide consumption in India: insights into the current trends. Agriculture (London), 13, 557.

[25]

Chaudhary, O.P. & Chand, R. (2017) Economic benefits of animal pollination to Indian agriculture. The Indian Journal of Agricultural Sciences, 87, 1117-1138.

[26]

Chauhan, A., Singh, H.K. & Kumaranag, K.M. (2019) Pollination potential of stingless bee Tetragonula iridipennis Smith in ash gourd. Indian Journal of Entomology, 81, 854-859.

[27]

Cleland, E.E., Chuine, I., Menzel, A., Mooney, H.A. & Schwartz, M.D. (2007) Shifting plant phenology in response to global change. Trends in Ecology & Evolution, 22, 357-365.

[28]

Devy, M.S. & Davidar, P. (2003) Pollination systems of trees in Kakachi, a mid-elevation wet evergreen forest in Western Ghats, India. American Journal of Botany, 90, 650-657.

[29]

Díaz, S., Settele, J., Brondízio, E.S., Ngo, H.T., Agard, J. & Arneth, A. et al. (2019) Pervasive human-driven decline of life on Earth points to the need for transformative change. Science, 366(6471), eaax3100.

[30]

Gallai, N., Salles, J.M., Settele, J. & Vaissière, B.E. (2009) Economic valuation of the vulnerability of world agriculture confronted with pollinator decline. Ecological Economics, 68, 810-821.

[31]

Garibaldi, L.A., Steffan-Dewenter, I., Winfree, R., Aizen, M.A., Bommarco, R., Cunningham, S.A. et al. (2013) Wild pollinators enhance fruit set of crops regardless of honey bee abundance. Science, 339, 1608-1611.

[32]

Giejsztowt, J., Classen, A.T. & Deslippe, J.R. (2020) Climate change and invasion may synergistically affect native plant reproduction. Ecology, 101, e02913.

[33]

Hegland, S.J., Nielsen, A., Lázaro, A., Bjerknes, A.L. & Totland, Ø. (2009) How does climate warming affect plant-pollinator interactions? Ecology Letters, 12, 184-195.

[34]

Hill, D.S. (1997) The economic importance of insects. London: Chapman and Hall.

[35]

IPBES. (2016) The assessment report of the intergovernmental science-policy platform on biodiversity and ecosystem services on pollinators, pollination and food production. Bonn, Germany: Secretariat of the Intergovernmental Science-Policy Platform on Biodiversity and Ecosystem Services.

[36]

Karmakar, P. (2017) Declining pollinators vis-à-vis pollination crisis, crop yield, and biodiversity loss. In: P. Pratihar & H.O. Clark (Eds.) Defaunation and conservation. Tucson: Tucson Herpetological Society, pp. 2-12.

[37]

Kearns, C.A., Inouye, D.W. & Waser, N.M. (1998) Endangered mutualisms: the conservation of plant-pollinator interactions. Annual Review of Ecology and Systematics, 29, 83-112.

[38]

Kevan, P.G., Clark, E.A. & Thomas, V.G. (1990) Insect pollinators and sustainable agriculture. American Journal of Alternative Agriculture, 5, 13-22.

[39]

Kevan, P.G. & Viana, B.F. (2003) The global decline of pollination services. Biodiversity, 4, 3-8.

[40]

Khalifa, S.A.M., Elshafiey, E.H., Shetaia, A.A., El-Wahed, A.A.A., Algethami, A.F., Musharraf, S.G. et al. (2021) Overview of bee pollination and its economic value for crop production. Insects, 12, 688.

[41]

Klein, A.M., Vaissière, B.E., Cane, J.H., Steffan-Dewenter, I., Cunningham, S.A., Kremen, C. et al. (2007) Importance of pollinators in changing landscapes for world crops. Proceedings of the Royal Society B: Biological Sciences, 274, 303-313.

[42]

Larson, B.M.H. & Barrett, S.C.H. (2000) A comparative analysis of pollen limitation in flowering plants. Biological Journal of the Linnean Society, 69, 503-520.

[43]

Layek, U., Das, A. & Karmakar, P. (2022) Supplemental stingless bee pollination in fennel (Foeniculum vulgare Mill.): an assessment of impacts on native pollinators and crop yield. Frontiers in Sustainable Food Systems, 6, 820264.

[44]

Layek, U., Kundu, A., Bisui, S. & Karmakar, P. (2021) Impact of managed stingless bee and Western honey bee colonies on native pollinators and yield of watermelon: A comparative study. Annals of Agricultural Sciences, 66, 38-45.

[45]

Liu, Y., Pan, X. & Li, J. (2015) A 1961-2010 record of fertilizer use, pesticide application and cereal yields: a review. Agronomy for Sustainable Development, 35, 83-93.

[46]

Marselle, M.R., Turbe, A., Shwartz, A., Bonn, A. & Colléony, A. (2021) Addressing behavior in pollinator conservation policies to combat the implementation gap. Conservation Biology, 35, 610-622.

[47]

Mayer, C., Adler, L., Armbruster, W.S., Dafni, A., Eardley, C., Huang, S.Q. et al. (2011) Pollination ecology in the 21st century: key questions for future research. Journal of Pollination Ecology, 3, 8-23.

[48]

Nabhan, G.P. & Buchmann, S. (1997) Services provided by pollinators. In: G.G. Daily (Ed.) Nature’s services: Societal dependence on natural ecosystems. Washington, DC: Island Press, pp. 133-150.

[49]

Nath, R., Singh, H. & Mukherjee, S. (2023) Insect pollinators decline: an emerging concern of Anthropocene epoch. Journal of Apicultural Research, 62, 23-38.

[50]

Nayak, K.G. & Davidar, P. (2010) Pollination and breeding systems of woody plant species in tropical dry evergreen forests, Southern India. Flora - Morphology, Distribution, Functional Ecology of Plants, 205, 745-753.

[51]

Ollerton, J. (2021) Pollinators and pollination: Nature and society. Exeter: Pelagic Publishing.

[52]

Ollerton, J., Winfree, R. & Tarrant, S. (2011) How many flowering plants are pollinated by animals. Oikos, 120, 321-326.

[53]

Orr, M.C., Hughes, A.C., Chesters, D., Pickering, J., Zhu, C.D. & Ascher, J.S. (2021) Global patterns and drivers of bee distribution. Current Biology, 31, 451-458.e4.

[54]

Osterman, J. (2022) Doctoral dissertation, Dissertation, HalleDissertation, Halle (Saale), Martin-Luther-Universität Halle-Wittenberg. The ecology of crop pollination and its integration into farm management to ensure sustainable and stable crop yield.

[55]

Page, M.J., McKenzie, J.E., Bossuyt, P.M., Boutron, I., Hoffmann, T.C., Mulrow, C.D. et al. (2021) The PRISMA 2020 statement: an updated guideline for reporting systematic reviews. BMJ, 72, n71.

[56]

Pandey, J.K. (2023) Use of hazardous chemical pesticides in India: a review. Proceedings of the National Academy of Sciences, India, Section B: Biological Sciences, 93, 523-537.

[57]

Patel, V., Pauli, N., Biggs, E., Barbour, L. & Boruff, B. (2021) Why bees are critical for achieving sustainable development. Ambio, 50, 49-59.

[58]

Potts, S.G., Biesmeijer, J.C., Bommarco, R., Felicioli, A., Fischer, M., Jokinen, P. et al. (2011) Developing European conservation and mitigation tools for pollination services: approaches of the STEP (Status and Trends of European Pollinators) project. Journal of Apicultural Research, 50, 152-164.

[59]

Potts, S.G., Biesmeijer, J.C., Kremen, C., Neumann, P., Schweiger, O. & Kunin, W.E. (2010) Global pollinator declines: trends, impacts and drivers. Trends in Ecology & Evolution, 25, 345-353.

[60]

Potts, S.G., Imperatriz-Fonseca, V., Ngo, H.T., Aizen, M.A., Biesmeijer, J.C., Breeze, T.D. et al. (2016) Safeguarding pollinators and their values to human well-being. Nature, 540, 220-229.

[61]

Prendergast, K.S. (2023) Checking in at bee hotels: Trap-nesting occupancy and fitness of cavity-nesting bees in an urbanised biodiversity hotspot. Urban Ecosystems, 26, 1381-1395.

[62]

R Core Team. (2020) R: A language and environment for statistical computing. R Foundation for Statistical Computing. https://www.r-project.org

[63]

Rader, B., Scarpino, S.V., Nande, A., Hill, A.L., Adlam, B., Reiner, R.C. et al. (2020) Crowding and the shape of COVID-19 epidemics. Nature Medicine, 26, 1829-1834.

[64]

Reddy, P.V., Verghese, A., Sridhar, V. & Rajan, V.V. (2013) Plant-pollinator interactions: a highly evolved synchrony at risk due to climate change. In H. Singh, N. Rao & K. Shivashankar (Eds.) Climate-resilient horticulture: Adaptation and mitigation strategies, New Delhi, India: Springer. pp. 295-302.

[65]

Reilly, J.R., Artz, D.R., Biddinger, D., Bobiwash, K., Boyle, N.K., Brittain, C. et al. (2020) Crop production in the USA is frequently limited by a lack of pollinators. Proceedings of the Royal Society B: Biological Sciences, 287, 20200922.

[66]

Ren, M., Jiang, X. & Zhang, D. (2012) Some important questions in plant reproductive ecology. Biodiversity Science, 20, 241-249.

[67]

Requier, F., Garnery, L., Kohl, P.L., Njovu, H.K., Pirk, C., Crewe, R.M. et al. (2019) The conservation of native honey bees is crucial. Trends in Ecology & Evolution, 34, 789-798.

[68]

Settele, J., Bishop, J. & Potts, S.G. (2016) Climate change impacts on pollination. Nature Plants, 2, 16092.

[69]

Shaanker, R.U. & Ganeshaiah, K.N. (1993) Pollination biology in India-surveying the past. Current Science, 10, 195-198.

[70]

Sharma, V., Tripathi, A.K. & Mittal, H. (2022) Technological revolutions in smart farming: current trends, challenges & future directions. Computers and Electronics in Agriculture, 13, 107217.

[71]

Shi, X., Huang, D., Xu, H., Ren, Z., Lu, Y., An, J. et al. (2024) Pollinator diversity, pollination services, and conservation in agroecosystems: a mini-review on the successes and challenges in China. Integrative Conservation, 3, 104-111.

[72]

Shivanna, K.R. (2022) The plight of bees and other pollinators, and its consequences on crop productivity. Resonance, 27, 785-799.

[73]

Shivanna, K.R., Tandon, R. & Koul, M. (2020) ‘Global Pollinator Crisis’ and its impact on crop productivity and sustenance of plant diversity. In: R. Tandon, K.R. Shivanna & M. Koul (Eds.) Reproductive ecology of flowering plants: patterns and processes. Singapore: Springer, pp. 395-413.

[74]

Soman, S., Christiansen, A., Florinski, R., Bharat, G., Steindal, E.H., Nizzetto, L. et al. (2024) An updated status of currently used pesticides in India: human dietary exposure from an Indian food basket. Environmental Research, 242, 117543.

[75]

Sponsler, D.B., Grozinger, C.M., Hitaj, C., Rundlöf, M., Botías, C., Code, A. et al. (2019) Pesticides and pollinators: a socioecological synthesis. Science of the Total Environment, 662, 1012-1027.

[76]

Subramanya, S. & Radhamani, T.R. (1993) Pollination by birds and bats. Current Science, 65, 201-209.

[77]

Tandon, R., Koul, M. & Shivanna, K.R. (2020) Reproductive ecology of flowering plants: An introduction. In: R. Tandon, K.R. Shivanna & M. Koul (Eds.) Reproductive ecology of flowering plants: patterns and processes. Singapore: Springer, pp. 1-24.

[78]

Tej, K.M., Srinivasan, M.R., Rajashree, V. & Thakur, R.K. (2017) Stingless bee Tetragonula iridipennis Smith for pollination of greenhouse cucumber. Journal of Entomology and Zoology studies, 5, 1729-1733.

[79]

Thomson Jacob, C., Parida, A. & Krishna Kumar, N.K. (2020) Conservation of India’s agrobiodiversity towards increasing food, nutritional and livelihood security. Current Science, 119, 607-612.

[80]

Tripathi, Y.N., Divyanshu, K., Kumar, S., Jaiswal, L.K., Khan, A., Birla, H. et al. (2020) Biopesticides: current status and future prospects in India. In: C Keswani. (Ed.) Bioeconomy for sustainable development. Singapore: Springer, pp. 79-109.

[81]

Tylianakis, J.M. (2013) The global plight of pollinators. Science, 339, 1532-1533.

[82]

Udawatta, R.P., Rankoth, L.M. & Jose, S. (2021) Agroforestry for biodiversity conservation. In: R.P. Udawatta & S. Jose (Eds.) Agroforestry and ecosystem services. Cham: Springer, pp. 245-274.

[83]

Vanbergen, A.J., Aizen, M.A., Cordeau, S., Garibaldi, L.A., Garratt, M.P., Kovács-Hostyánszki, A. et al. (2020) Transformation of agricultural landscapes in the anthropocene: nature’s contributions to people, agriculture and food security. Advances in Ecological Research, 63, 193-253.

[84]

Vaughan, M. & Black, S.H. (2008) Native pollinators: how to protect and enhance habitat for native bees. Native Plants Journal, 9, 80-91.

[85]

Vergara, C.H. & Badano, E.I. (2009) Pollinator diversity increases fruit production in Mexican coffee plantations: the importance of rustic management systems. Agriculture, Ecosystems & Environment, 129, 117-123.

[86]

Wickham, H. (2016) ggplot2: Elegant graphics for data analysis. New York: Springer-Verlag.

[87]

Winfree, R., Gross, B.J. & Kremen, C. (2011) Valuing pollination services to agriculture. Ecological Economics, 71, 80-88.

[88]

Zhang, W. (2018) Global pesticide use: Profile, trend, cost/benefit and more. Proceedings of the International Academy of Ecology and Environmental Sciences, 8, 1.

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