Impact of Temperature on Centelloside Content, Growth Characters, Physio-morphological Adaptations, and Biochemical Changes in Indian Pennywort (Centella asiatica)
暂无分享,去创建一个
S. Cha-um | C. Theerawitaya | R. Tisarum | P. Pipatsitee | P. Praseartkul | K. Taota | D. Chungloo | Haminder Pal Singh
[1] R. Varshney,et al. Assessment of proline function in higher plants under extreme temperatures. , 2023, Plant biology.
[2] Fang-fang Fu,et al. Spatial prediction and delineation of Ginkgo biloba production areas under current and future climatic conditions , 2021 .
[3] M. Mirjalili,et al. Variability, association and path analysis of centellosides and agro-morphological characteristics in Iranian Centella asiatica (L.) Urban ecotypes , 2021, South African Journal of Botany.
[4] Jianhe Wei,et al. Physiological and Transcriptomic Analysis Provide Insight into Low Temperature Enhancing Hypericin Biosynthesis in Hypericum perforatum , 2021, Molecules.
[5] M. Martínez-Cuenca,et al. Physiological characterization and proline route genes quantification under long-term cold stress in Carrizo citrange , 2021, Scientia Horticulturae.
[6] F. Maggi,et al. Review and future prospects on the mechanisms related to cold stress resistance and tolerance in medicinal plants , 2020 .
[7] Misa Hayashi,et al. Therapeutic Potential of Centella asiatica and Its Triterpenes: A Review , 2020, Frontiers in Pharmacology.
[8] Karuppaiya Palaniyandi,et al. Low temperature enhanced the podophyllotoxin accumulation vis-a-vis its biosynthetic pathway gene(s) expression in Dysosma versipellis (Hance) M. Cheng – A pharmaceutically important medicinal plant , 2020 .
[9] J. Zhuang,et al. The ascorbate peroxidase 1 regulates ascorbic acid metabolism in fresh-cut leaves of tea plant during postharvest storage under light/dark conditions. , 2020, Plant science : an international journal of experimental plant biology.
[10] F. Tavakoli,et al. Subject: UV-B radiation and low temperature promoted hypericin biosynthesis in adventitious root culture of Hypericum perforatum , 2020, Plant signaling & behavior.
[11] Su Chen,et al. Physiological and Molecular Mechanism Involved in Cold Stress Tolerance in Plants , 2020, Plants.
[12] Yanli Zhou,et al. Transcriptomic response to cold of thermophilous medicinal plant Marsdenia tenacissima. , 2020, Gene.
[13] Yiting Shi,et al. Molecular Regulation of Plant Responses to Environmental Temperatures. , 2020, Molecular plant.
[14] M. Sussman,et al. The effect of developmental and environmental factors on secondary metabolites in medicinal plants. , 2020, Plant physiology and biochemistry : PPB.
[15] T. Nägele,et al. Dynamics of Plant Metabolism during Cold Acclimation , 2019, International journal of molecular sciences.
[16] L. Fong,et al. Cardiovascular Protective Effects of Centella asiatica and Its Triterpenes: A Review , 2019, Planta Medica.
[17] D. Ni,et al. Chlorophyll metabolism in postharvest tea (Camellia sinensis. L) leaves: variations in color values, chlorophyll derivatives and gene expression levels under different withering treatments. , 2019, Journal of agricultural and food chemistry.
[18] Yiting Shi,et al. Advances and challenges in uncovering cold tolerance regulatory mechanisms in plants. , 2019, The New phytologist.
[19] D. Hincha,et al. Deacclimation after cold acclimation—a crucial, but widely neglected part of plant winter survival , 2019, Journal of experimental botany.
[20] Sulistiyani,et al. A combination of simultaneous quantification of four triterpenes and fingerprint analysis using HPLC for rapid identification of Centella asiatica from its related plants and classification based on cultivation ages , 2018, Industrial Crops and Products.
[21] J. Zhuang,et al. Differentially expressed protein and gene analysis revealed the effects of temperature on changes in ascorbic acid metabolism in harvested tea leaves , 2018, Horticulture Research.
[22] F. Kormin,et al. Effect of temperature on the synthesis of Centella asiatica flavonoids extract-mediated gold nanoparticles: UV-visible spectra analyses , 2018 .
[23] S. Srivastava,et al. Chemotaxonomic Studies on Centella asiatica (L.) Urb. from Varied Phytogeographical Conditions of India for Its Industrial Prospection , 2018, Proceedings of the National Academy of Sciences, India Section B: Biological Sciences.
[24] K. Chong,et al. Cold signaling in plants: Insights into mechanisms and regulation. , 2018, Journal of integrative plant biology.
[25] C. Perera,et al. Centella asiatica (Gotu kola) as a neuroprotectant and its potential role in healthy ageing , 2018, Trends in Food Science & Technology.
[26] Yiting Shi,et al. Molecular Regulation of CBF Signaling in Cold Acclimation. , 2018, Trends in plant science.
[27] Longxing Hu,et al. Differential physiological and metabolic response to low temperature in two zoysiagrass genotypes native to high and low latitude , 2018, PloS one.
[28] Yingxian Zhao,et al. Response of Plant Secondary Metabolites to Environmental Factors , 2018, Molecules.
[29] J. Quinn,et al. Centella asiatica: phytochemistry and mechanisms of neuroprotection and cognitive enhancement , 2017, Phytochemistry Reviews.
[30] D. Olennikov,et al. Effect of Low Temperature Cultivation on the Phytochemical Profile and Bioactivity of Arctic Plants: A Case of Dracocephalum palmatum , 2017, International journal of molecular sciences.
[31] C. P. Carvalho,et al. Rapid responses of plants to temperature changes , 2017, Temperature.
[32] M. López-Meyer,et al. Low temperature and ultraviolet-B radiation affect chlorophyll content and induce the accumulation of UV-B-absorbing and antioxidant compounds in bell pepper (Capsicum annuum) plants , 2017 .
[33] A. G. Pirbalouti,et al. Exogenous application of chitosan on biochemical and physiological characteristics, phenolic content and antioxidant activity of two species of basil (Ocimum ciliatum and Ocimum basilicum) under reduced irrigation , 2017 .
[34] A. Mathur,et al. Biomass and centellosides production in two elite Centella asiatica germplasms from India in response to seasonal variation , 2016 .
[35] A. Kalisz,et al. Impacts of chilling on photosynthesis and chlorophyll pigment content in juvenile basil cultivars , 2016, Horticulture, Environment, and Biotechnology.
[36] R. Julkunen‐Tiitto,et al. Interactive effects of supplemental UV-B and temperature in European aspen seedlings: Implications for growth, leaf traits, phenolic defense and associated organisms. , 2015, Plant physiology and biochemistry : PPB.
[37] H. Bhat,et al. Physio-chemical and antioxidant profiling of Salvia sclarea L. at different climates in north-western Himalayas , 2015, Acta Physiologiae Plantarum.
[38] W. Plengmuankhae,et al. Low temperature and water dehydration increase the levels of asiaticoside and madecassoside in Centella asiatica (L.) Urban , 2015 .
[39] Ihsan-Ul-Haq,et al. Seasonal and geographical impact on the morphology and 20-hydroxyecdysone content in different tissue types of wild Ajuga bracteosa Wall. ex Benth. , 2014, Steroids.
[40] A. Fernie,et al. Comparative metabolic profiling of Haberlea rhodopensis, Thellungiella halophyla, and Arabidopsis thaliana exposed to low temperature , 2013, Front. Plant Sci..
[41] G. Noga,et al. Centelloside accumulation in leaves of Centella asiatica is determined by resource partitioning between primary and secondary metabolism while influenced by supply levels of either nitrogen, phosphorus or potassium. , 2013, Journal of plant physiology.
[42] M. Qiao,et al. The effect of elicitors on oleanolic acid accumulation and expression of triterpenoid synthesis genes in Gentiana straminea , 2013, Biologia Plantarum.
[43] A. Fuggi,et al. An improved fluorimetric HPLC method for quantifying tocopherols in Brassica rapa L. subsp. sylvestris after harvest , 2012 .
[44] P. Danthu,et al. The Influence of Certain Taxonomic and Environmental Parameters on Biomass Production and Triterpenoid Content in the Leaves of Centella asiatica (L.) Urb. from Madagascar , 2012, Chemistry & biodiversity.
[45] B. Kräutler,et al. Chlorophyll breakdown in higher plants. , 2011, Biochimica et biophysica acta.
[46] M. Thomas,et al. Elite genotypes/chemotypes, with high contents of madecassoside and asiaticoside, from sixty accessions of Centella asiatica of south India and the Andaman Islands: For cultivation and utility in cosmetic and herbal drug applications , 2010 .
[47] R. Deswal,et al. Downregulation of terpenoid indole alkaloid biosynthetic pathway by low temperature and cloning of a AP2 type C-repeat binding factor (CBF) from Catharanthus roseus (L). G. Don , 2007, Plant Cell Reports.
[48] D. DellaPenna,et al. Tocopherols Play a Crucial Role in Low-Temperature Adaptation and Phloem Loading in Arabidopsis[W] , 2006, The Plant Cell Online.
[49] E. Baena-González,et al. Sugar sensing and signaling in plants: conserved and novel mechanisms. , 2006, Annual review of plant biology.
[50] T. Kozai,et al. Temperature stress can alter the photosynthetic efficiency and secondary metabolite concentrations in St. John's wort. , 2005, Plant physiology and biochemistry : PPB.
[51] M. Erbaş,et al. Comparison of different extraction and detection methods for sugars using amino-bonded phase HPLC. , 2003, Journal of chromatographic science.
[52] Yadvinder-Singh,et al. Use of Chlorophyll Meter Sufficiency Indices for Nitrogen Management of Irrigated Rice in Asia , 2000, Agronomy Journal.
[53] K Maxwell,et al. Chlorophyll fluorescence--a practical guide. , 2000, Journal of experimental botany.
[54] B. Loggini,et al. Antioxidative defense system, pigment composition, and photosynthetic efficiency in two wheat cultivars subjected to drought , 1999, Plant physiology.
[55] J. Hazebroek,et al. Tocopherols in breeding lines and effects of planting location, fatty acid composition, and temperature during development , 1999 .
[56] G. O. Almonor,et al. Temperature effects on tocopherol composition in soybeans with genetically improved oil quality , 1998 .
[57] Franziska Eller,et al. Hybrid Napier grass (Pennisetum purpureum Schumach × P. americanum (L.) Leeke cv. Pakchong1) and Giant reed (Arundo donax L.) as candidate species in temperate European paludiculture: Growth and gas exchange responses to suboptimal temperatures , 2020 .