IPCC (2007) Climate change 2007. The physical science basis. In: Contribution of Working Group
I to the fourth assessment report of the Intergovernmental Panel on Climate Change. Cambridge
University Press, Cambridge/New York
Irenaeus TKS, Mitra SK (2014) Understanding the pollen and ovule characters and fruit set of fruit
crops in relation to temperature and genotype: a review. J Appl Bot Food Qual 87:157–167
Jia XL, Chen YK, Xu XZ, Shen F, Zheng QB (2017) miR156 switches on vegetative phase change
under the regulation of redox signals in apple seedlings. Sci Rep 7:1422–1423
Jiménez S, Dridi J, Gutiérrez D, Moret D, Moreno MA, Gorgocena Y (2013) Physiological and
molecular responses in four Prunus submitted to drought stress. Tree Physiol 33:1061–1075
Jindal KK, Chauhan PS, Mankotia MS (2000) Apple productivity in relation to environmental
components. In: Jindal KK, Gautam DR (eds) Productivity of temperate fruits. Dr YS Parmar
University of Horticulture and Forestry, Solan, pp 12–20
Keller M (2009) Managing grapevines to optimise fruit development in a challenging environment:
a climate change primer for viticulturists. Aust J Grape Wine Res 9(145):1–14
Keller M (2010) The science of grapevines: anatomy and physiology. Academic Press, New York
Kim C, Lee S, Jeong H, Jang J, Kim Y, Lee C (2010) Impacts of climate change on Korean
agriculture and its counterstrategies. Korea Rural Economic Institute, Seoul, p 282
Kliewer MW, Lider LA (1970) Effects of day temperature and light intensity on growth and
composition of Vitis vinifera L. fruits. J Am Soc Hortic Sci 95:766–776
Kuden AB, Tuzcu O, Bayazit S, Yildirim B, Imrak B (2013) Studies on the chilling requirements of
pecan nut (Carya illionensis Koch) cultivars. Afr J Agric Res 8(24):3159–3165
Kullaj E, Thomaj F, Kucera J (2017) Rapid screening of apple genotypes for drought tolerance by a
simplified model of canopy conductance. J Agric Sci Technol 19:731–743
Kumar R (2015) Climate issues affecting sustainable litchi (Litchi chinensis Sonn) production in
eastern India. In: Chaudhary ML, Patel VB, Siddiqui MW, Verma RB (eds) Climate dynamics
in horticultural science, vol 2. Impact, adaptation and mitigation. Apple Academic Press,
Oakville, p 351
Kumar R, Kumar KK (2007) Managing physiological disorders in litchi. Indian Hortic 52(1):22–24
Kumar R, Shukla O (2010) Effect of temperature on growth, development and reproduction of fruit
fly Bractocera dorsalis. Hendel (Diptera Tephritidae) in mango. J Ecofriendly Agric 5
(2):150–153
Lal S, Singh DB, Sharma OC, Mir JI, Sharma A, Raja WH, Kumawat KL, Rather SA (2018) Impact
of climate change on productivity and quality of temperate fruits and its management strategies.
Int J Adv Res Sci Eng 7(4):1833–1844
Laucou V, Lacombe T, Dechesne F, Siret R, Bruno JP, Dessup M, Dessup T, Ortigosa P, Parra P,
Roux C, Santoni S, Vares D, Peros JP, Boursiquot JM, This P (2011) High throughput analysis
of grape genetic diversity as a tool for germplasm collection management. Theor Appl Genet
122:1233–1245
Legave JM, Richard JC, Fournier D (2006) Characterization and influence of floral abortion in
French apricot crop area. Acta Hortic 701:63–68
Legave JM, Blanke M, Christen D, Giovannini D, Mathieu V, Oger R (2013) A comprehensive
overview of the spatial and temporal variability of apple bud dormancy release and blooming
phenology in Western Europe. Int J Biometeorol 57:317–331
Li Y, Cao K, Zhu G, Fang W, Chen C, Wang X, Zhao P, Guo J, Ding T, Guan L, Zhang Q, Guo W,
Fei Z, Wang L (2019) Genomic analyses of an extensive collection of wild and cultivated
accessions provide new insights into peach breeding history. Genome Biol 20:36. https://doi.
org/10.1186/s13059-019-1648-9
Makhmale S, Bhutada P, Yadav L, Yadav BK (2016) Impact of climate change on phenology of
mango: a case study. Ecol Environ Conserv Pap 22:119–124
Micheletti D, Dettori MT, Micali S, Aramini V, Pacheco I, Da Silva Linge C, Foschi S, Banchi E,
Barreneche T, Quilot-Turion B, Lambert P, Pascal T, Iglesias I, Carbó J, Wang LR, Ma RJ, Li
XW, Gao ZS, Nazzicari N, Troggio M, Bassi D, Rossini L, Verde I, Laurens F, Arús P,
96
T. Sarkar et al.
I to the fourth assessment report of the Intergovernmental Panel on Climate Change. Cambridge
University Press, Cambridge/New York
Irenaeus TKS, Mitra SK (2014) Understanding the pollen and ovule characters and fruit set of fruit
crops in relation to temperature and genotype: a review. J Appl Bot Food Qual 87:157–167
Jia XL, Chen YK, Xu XZ, Shen F, Zheng QB (2017) miR156 switches on vegetative phase change
under the regulation of redox signals in apple seedlings. Sci Rep 7:1422–1423
Jiménez S, Dridi J, Gutiérrez D, Moret D, Moreno MA, Gorgocena Y (2013) Physiological and
molecular responses in four Prunus submitted to drought stress. Tree Physiol 33:1061–1075
Jindal KK, Chauhan PS, Mankotia MS (2000) Apple productivity in relation to environmental
components. In: Jindal KK, Gautam DR (eds) Productivity of temperate fruits. Dr YS Parmar
University of Horticulture and Forestry, Solan, pp 12–20
Keller M (2009) Managing grapevines to optimise fruit development in a challenging environment:
a climate change primer for viticulturists. Aust J Grape Wine Res 9(145):1–14
Keller M (2010) The science of grapevines: anatomy and physiology. Academic Press, New York
Kim C, Lee S, Jeong H, Jang J, Kim Y, Lee C (2010) Impacts of climate change on Korean
agriculture and its counterstrategies. Korea Rural Economic Institute, Seoul, p 282
Kliewer MW, Lider LA (1970) Effects of day temperature and light intensity on growth and
composition of Vitis vinifera L. fruits. J Am Soc Hortic Sci 95:766–776
Kuden AB, Tuzcu O, Bayazit S, Yildirim B, Imrak B (2013) Studies on the chilling requirements of
pecan nut (Carya illionensis Koch) cultivars. Afr J Agric Res 8(24):3159–3165
Kullaj E, Thomaj F, Kucera J (2017) Rapid screening of apple genotypes for drought tolerance by a
simplified model of canopy conductance. J Agric Sci Technol 19:731–743
Kumar R (2015) Climate issues affecting sustainable litchi (Litchi chinensis Sonn) production in
eastern India. In: Chaudhary ML, Patel VB, Siddiqui MW, Verma RB (eds) Climate dynamics
in horticultural science, vol 2. Impact, adaptation and mitigation. Apple Academic Press,
Oakville, p 351
Kumar R, Kumar KK (2007) Managing physiological disorders in litchi. Indian Hortic 52(1):22–24
Kumar R, Shukla O (2010) Effect of temperature on growth, development and reproduction of fruit
fly Bractocera dorsalis. Hendel (Diptera Tephritidae) in mango. J Ecofriendly Agric 5
(2):150–153
Lal S, Singh DB, Sharma OC, Mir JI, Sharma A, Raja WH, Kumawat KL, Rather SA (2018) Impact
of climate change on productivity and quality of temperate fruits and its management strategies.
Int J Adv Res Sci Eng 7(4):1833–1844
Laucou V, Lacombe T, Dechesne F, Siret R, Bruno JP, Dessup M, Dessup T, Ortigosa P, Parra P,
Roux C, Santoni S, Vares D, Peros JP, Boursiquot JM, This P (2011) High throughput analysis
of grape genetic diversity as a tool for germplasm collection management. Theor Appl Genet
122:1233–1245
Legave JM, Richard JC, Fournier D (2006) Characterization and influence of floral abortion in
French apricot crop area. Acta Hortic 701:63–68
Legave JM, Blanke M, Christen D, Giovannini D, Mathieu V, Oger R (2013) A comprehensive
overview of the spatial and temporal variability of apple bud dormancy release and blooming
phenology in Western Europe. Int J Biometeorol 57:317–331
Li Y, Cao K, Zhu G, Fang W, Chen C, Wang X, Zhao P, Guo J, Ding T, Guan L, Zhang Q, Guo W,
Fei Z, Wang L (2019) Genomic analyses of an extensive collection of wild and cultivated
accessions provide new insights into peach breeding history. Genome Biol 20:36. https://doi.
org/10.1186/s13059-019-1648-9
Makhmale S, Bhutada P, Yadav L, Yadav BK (2016) Impact of climate change on phenology of
mango: a case study. Ecol Environ Conserv Pap 22:119–124
Micheletti D, Dettori MT, Micali S, Aramini V, Pacheco I, Da Silva Linge C, Foschi S, Banchi E,
Barreneche T, Quilot-Turion B, Lambert P, Pascal T, Iglesias I, Carbó J, Wang LR, Ma RJ, Li
XW, Gao ZS, Nazzicari N, Troggio M, Bassi D, Rossini L, Verde I, Laurens F, Arús P,
96
T. Sarkar et al.
