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1

Ekeke, C., and Josephine U. Agogbua. "Morphological and Anatomical Studies on Trichosanthes cucumerina L. (Cucurbitaceae)." International Journal of Plant & Soil Science 25, no. 6 (2018): 1–8. http://dx.doi.org/10.9734/ijpss/2018/44982.

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2

Uwumarongie, A.M., R.K.A. Egharevba, and Y. Waizah. "Effects of NPK 15:15:15 Fertilizer on the Growth and Yield of Two Landrace of Snake Tomatoes, (Trichosanthes cucumerina L.)." Greener Journal of Agricultural Sciences 3, no. 9 (2013): 669–77. https://doi.org/10.15580/GJAS.2013.9.110913835.

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The study was conducted to evaluate the effects of NPK 15:15:15 fertilizer on the growth and yield of two landrace of Snake tomatoes<em>,</em>&nbsp;(<em>Trichosanthes cucumerina</em>&nbsp;L<em>.</em>.), with the aim to determining the landrace of&nbsp;<em>Trichosanthes cucumerina</em>&nbsp;that best suit the environmental condition of South South ecological zone with special reference to Benin City and also the landrace that responds better to fertilizer application. The experiment was conducted twice in the early and late cropping seasons of 2010. Four fertilizer levels of 0, 80, 160 and 240k
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3

Islam, MR, MM Rahman, M. Zakaria, MA Hoque, and M. Hasan. "Genetic Diversity in Snake Gourd (Trichosanthes Cucumerina Var. Anguina L.)." Bangladesh Journal of Agricultural Research 45, no. 2 (2022): 99–111. http://dx.doi.org/10.3329/bjar.v45i2.59858.

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Multivariate analysis of fifty five genotypes of snake gourd was performed at the experimental field of Horticulture Department, Bangabandhu Sheikh Mujibur Rahman Agricultural University, Gazipur, Bangladesh from March to June, 2017 to estimate genetic diversity and choosing the potential parents for a successful hybridization program. The genotypes are grouped into six clusters according to an analysis of Principal Component Analysis (PCA) and Mahalanobis D2. The highest inter-cluster distance was noted between clusters I and VI (205.66) and the lowest between clusters II and V (38.87). The m
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4

Deepa Devi, N., St Mariappan, T. Arumugam, S. Mohan, and C. R. Anandakumar. "Combining Ability and Heterosis in Snake Gourd (Trichosanthes cucumerina L.)." Madras Agricultural Journal 104, no. 10-12 (2017): 410. http://dx.doi.org/10.29321/maj.2017.000089.

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5

Islam, MR, MM Rahman, S. Pramanik, and J. Ferdousi. "Heterosis Studies in Snake Gourd (Trichosanthes Cucumerina Var. Anguina L.)." Bangladesh Journal of Agricultural Research 47, no. 1 (2023): 1–12. http://dx.doi.org/10.3329/bjar.v47i1.64839.

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An investigation was carried out on snake gourd at the research farm of the Department of Horticulture, Bangabandhu Sheikh Mujibur Rahman Agricultural University (BSMRAU), Bangladesh during March to June 2019. Significant heterosis was observed for most of the characters studied to find out high heterotic combination for better hybrids. Both positive and negative heterosis were found for different characters of the F1 hybrids over better parents. The best better parent heterotic performance was exhibited by early flowering and fruit fly infestation in P2 x P7 and P6 x P7, respectively while P3
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6

Sathesh Kumar, S., B. Ravi Kumar, and G. Krishna Mohan. "Hepatoprotective effect of Trichosanthes cucumerina Var cucumerina L. on carbon tetrachloride induced liver damage in rats." Journal of Ethnopharmacology 123, no. 2 (2009): 347–50. http://dx.doi.org/10.1016/j.jep.2009.02.023.

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7

Muthuvel, M., M. Vigneswaran, and N. Jayabalan. "In Vitro Plant Regeneration through Different Explant of Trichosanthes cucumerina L." International Journal of Current Research in Biosciences and Plant Biology 4, no. 12 (2017): 108–16. http://dx.doi.org/10.20546/ijcrbp.2017.412.009.

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8

Devi, N. Deepa, S. Mariappan, and T. Arumugam. "Heterosis in Snake Gourd (Trichosanthes cucumerina L.) for Growth and Earliness." International Journal of Current Microbiology and Applied Sciences 6, no. 3 (2017): 387–93. http://dx.doi.org/10.20546/ijcmas.2017.603.044.

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9

Idowu, D. O., A. B. Fashina, O. E. Kolapo, and O. M. Awolusi. "Snake Gourd (Trichosanthes cucumerina L.): An Underutilized Crop with Great Potentials." International Journal of Current Microbiology and Applied Sciences 8, no. 09 (2019): 1711–17. http://dx.doi.org/10.20546/ijcmas.2019.809.194.

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10

Muthuvel, M., M. Vigneswaran, and N. Jayabalan. "Effect of Plant Growth Regulators on Indirect Organogenesis of Trichosanthes cucumerina L." International Journal of Current Research in Biosciences and Plant Biology 4, no. 12 (2016): 125–35. http://dx.doi.org/10.20546/ijcrbp.2017.412.011.

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11

Suebsakwong, Parichat, Wanatsanan Chulrik, Warangkana Chunglok, Jian-Xin Li, Zhu-Jun Yao, and Apichart Suksamrarn. "New triterpenoid saponin glycosides from the fruit fibers of Trichosanthes cucumerina L." RSC Advances 10, no. 18 (2020): 10461–70. http://dx.doi.org/10.1039/d0ra01176b.

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12

Kanakasabapathi Pradheep, Soyimchiten, Ganjalagatta Dasaiah Harish, et al. "Updated distribution of seven Trichosanthes L. (Cucurbitales: Cucurbitaceae) taxa in India, along with taxonomic notes." Journal of Threatened Taxa 13, no. 14 (2021): 20143–52. http://dx.doi.org/10.11609/jott.6313.13.14.20143-20152.

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In India, lack of revisionary work in the genus Trichosanthes L. (Cucurbitales: Cucurbitaceae) over the past 38 years had resulted in several taxonomic and nomenclatural issues, which had implications in determining actual distribution status of taxa. Based on field observations, collected specimens, data from various specimens in herbaria and critical study of all the resources available, here we confirm the extended distribution of T. anaimalaiensis Bedd. in the states of Manipur and Nagaland; T. cordata Roxb. in Uttar Pradesh and Bihar; T. cucumerina L. subsp. sublobata (Kundu) K. Pradheep,
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13

R., Sudha Bai, Remakanthan A., Hareesh Kumar H., and Aryakrishna U. K. "A COMPARATIVE STUDY OF THE PHYTOCHEMICALS, ANTIOXIDANT AND ANTIBACTERIAL POTENTIAL OF METHANOLIC EXTRACTS OF TRICHOSANTHES CUCUMERINA (L.) VAR. CUCUMERINA UNDER IN VITRO CULTURE AND NATURAL CONDITIONS." International Journal of Pharmacy and Pharmaceutical Sciences 10, no. 1 (2018): 147. http://dx.doi.org/10.22159/ijpps.2018v10i1.22711.

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Objective: To compare the phytochemicals, antioxidative capacity and antibacterial profile of methanolic extracts of callus and naturally propagated plant species-Trichosanthes cucumerina (L.) var. cucumerina and to optimize an ideal protocol for in vitro callus and shoot induction.Methods: The sterilized seeds of Trichosanthes cucumerina (L.) var. cucumerina were inoculated in half Murashige and Skoog (MS) basal medium devoid of growth hormones to raise aseptic seedlings. Explants from aseptic seedlings used for callus induction in MS medium fortified with varying combinations of N6–Benzyl am
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14

N., Deepa Devi. "Medicinal Values of Trichosanthus cucumerina L. (Snake Gourd) - A Review." British Journal of Pharmaceutical Research 16, no. 5 (2017): 1–10. https://doi.org/10.9734/BJPR/2017/33575.

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Snake gourd is an annual climber and it’s commonly called as snake gourd, viper gourd, snake tomato or long tomato. The fruit is usually consumed as a vegetable due to it is good nutritional value. The fruit is a good source of Vitamin A, Vitamin B and Vitamin C. It improves the appetite and acts as a tonic and stomachic and cures biliousness. This is one of the most genetically diverse groups of food plant in the plant kingdom and every part of this plant is used to treat various diseases. It is used in the treatment of head ache, alopecia, fever, abdominal tumors, bilious, boils, acute colic
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15

Lertphadungkit, Pornpatsorn, Jiraphong Suksiriworapong, Veena Satitpatipan, Supaart Sirikantaramas, Amaraporn Wongrakpanich, and Somnuk Bunsupa. "Enhanced Production of Bryonolic Acid in Trichosanthes cucumerina L. (Thai Cultivar) Cell Cultures by Elicitors and Their Biological Activities." Plants 9, no. 6 (2020): 709. http://dx.doi.org/10.3390/plants9060709.

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Bryonolic acid is a triterpenoid compound found in cucurbitaceous roots. Due to its biological activities, this compound gets more attention to improve production. Herein, we carried out efficient ways with high bryonolic acid productions from Trichosanthes cucumerina L., a Thai medicinal plant utilizing plant cell cultures. The results showed that calli (24.65 ± 1.97 mg/g dry weight) and cell suspensions (15.69 ± 0.78 mg/g dry weight) exhibited the highest bryonolic acid productions compared with natural roots (approximately 2 mg/g dry weight). In the presence of three elicitors (methyl jasmo
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16

Devendra, N. K., E. G. Attard, D. Raghunandan, and Y. N. Seetharam. "Study on Seasonal Variation on the Content of Cucurbitacin of Various Vegetative Parts of Trichosanthes cucumerina L. var. cucumerina." International Journal of Plant Research 1, no. 1 (2012): 25–28. http://dx.doi.org/10.5923/j.plant.20110101.04.

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17

Devi, N. Deepa, S. Mariappan, T. Arumugam, and C. R. Anandakumar. "Genetic variability, heritability, correlation and path analysis in snake gourd (Trichosanthes cucumerina L.)." Electronic Journal of Plant Breeding 8, no. 2 (2017): 566. http://dx.doi.org/10.5958/0975-928x.2017.00085.0.

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18

Jadão, A. S., J. E. Buriola, and J. A. M. Rezende. "First Report of Papaya ringspot virus–Type W and Zucchini yellow mosaic virus Infecting Trichosanthes cucumerina in Brazil." Plant Disease 94, no. 6 (2010): 789. http://dx.doi.org/10.1094/pdis-94-6-0789b.

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Trichosanthes cucumerina L., known as snake gourd, is a cucurbitaceous plant that is probably native to and originally domesticated in India. It is cultivated in humid subtropical and tropical countries of Australia, Latin America, and Africa (2). Plants of this species exhibiting symptoms of mosaic and leaf malformation were found during November 2008 near an experimental field of the Departamento de Fitopatologia e Nematologia, Universidade de São Paulo, Piracicaba, State of São Paulo, Brazil. Electron microscopy examination of negatively stained extract of infected tissue showed the presenc
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19

Osuagwu, Ann N., C. U. Aguoru, L. O. Omoigui, and J. O. Olasan. "Descriptive and Vegetative Characterization of fifteen ecotypes of Snake Gourd (Trichosanthes cucumerina L.) in Nigeria." Indonesian Journal of Agricultural Research 5, no. 2 (2023): 100–108. http://dx.doi.org/10.32734/injar.v5i2.9008.

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The descriptive and vegetative characterization of fifteen ecotypes of Trichosanthes cucumerina L (snake gourd) in Nigeria was carried out. The field study was done in two locations Markurdi and Umudike to evaluate the descriptive and vegetative characters of fifteen ecotypes of T. cucumerina from Middle Belt of the country, the South-South, South Eastern part and South Western part of Nigeria. Randomized Completed Block Design was adopted for the experiment at the exploration farm of Michael Okpara University of Agriculture, Umudike and Federal University of Agriculture, Makurd at the same gr
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20

Devi, N. Deepa, S. Mariappan, T. Arumugam, and C. R. Anandakumar. "Estimating Combining Ability for Yield and Yield Contributing Traits in Snake Gourd (Trichosanthes cucumerina L.)." International Journal of Current Microbiology and Applied Sciences 6, no. 2 (2017): 795–800. http://dx.doi.org/10.20546/ijcmas.2017.602.088.

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21

Tiwari, V. J. "Evidence Based Ethnopharmacological Uses of Trichosanthes cucumerina var. cucumerina (L.) Haines., (Cucurbitaceae) by Gond tribe of Gondia District of Maharashtra State, India." Research Journal of Pharmacognosy and Phytochemistry 8, no. 4 (2016): 209. http://dx.doi.org/10.5958/0975-4385.2016.00031.5.

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22

M, Ajmal Ali, and Fahad M. A. Al-Hemaid. "Trichosanthes anguina L. IS VARIETY OF Trichosanthese cucumerina L.- EVIDENCE BASED ON MOLECULAR PHYLOGENETIC ANALYSIS OF INTERNAL TRANSCRIBED SPACER (ITS) SEQUENCES OF NUCLEAR RIBOSOMAL DNA." International Journal of Molecular Biology 1, no. 2 (2010): 1–14. http://dx.doi.org/10.9735/0976-0482.1.2.1-14.

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23

Dabesor, P. A., D. M. Sanni, A. O. Kolawole, V. N. Enujiugha, O. T. Lawal, and A. T. Edeh. "Changes in physicochemical properties and enzymes associated with ripening of snake tomato (Trichosanthes Cucumerina L.) fruit." Biocatalysis and Agricultural Biotechnology 40 (March 2022): 102313. http://dx.doi.org/10.1016/j.bcab.2022.102313.

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24

SURIYA, R. "Effect of Organic manures and Bio-stimulants on the Yield of Snake gourd (Trichosanthes cucumerina L.)." Annals of Plant and Soil Research 25, no. 1 (2023): 177–81. http://dx.doi.org/10.47815/apsr.2023.10253.

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A field experiment was conducted to identify the influences of organic manures and bio-stimuants on the yield of snake gourd (Trichosanthes cucumerina L.) during kharif season of 2021. The organic manures like farm yard manure, vermicompost and phosphobacteria were applied as basal form, whereas bio-stimulants like seaweed extract and effective microorganism were foliar sprayed on three stages i.e. 20, 35 and 50 days after sowing. Maximum values of yield parameters viz., number of fruits vine-1 (20.32), fruit length (39.46 cm), fruit girth (15.21 cm), single fruit weight (490.26 g), fruit yiel
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25

Adebooye, O. C., G. J. Noga, and M. Schmitz-Eiberger. "Effects of root zone temperature and paraquat in the induction of oxidative stress in Trichosanthes cucumerina L." Acta Physiologiae Plantarum 30, no. 6 (2008): 873–79. http://dx.doi.org/10.1007/s11738-008-0193-z.

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26

Olubode, O. O., O. J. Idogun, and S. F. Sulaimon. "Effect of organo-mineral fertilizer rates on nutrient uptake and fruit quality of snake tomato (Trichosanthes cucumerina L.)." Acta Horticulturae, no. 1198 (April 2018): 125–40. http://dx.doi.org/10.17660/actahortic.2018.1198.22.

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27

Adebooye, O. C., and F. M. Oloyede. "Effect of phosphorus on the fruit yield and food value of two landraces of Trichosanthes cucumerina L.- Cucurbitaceae." Food Chemistry 100, no. 3 (2007): 1259–64. http://dx.doi.org/10.1016/j.foodchem.2005.10.002.

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28

CHURIYAH, CHURIYAH, GUSTAF ADOLF WATTIMENA, and BAMBANG PONTJO PRIYOSOERYANTO. "Induction of Trichosanthes cucumerina anguina L. var (L. Haines) Hairy Roots Using Agrobacterium rhizogenes ATCC 15834 for Production of Bioactive Protein." Microbiology Indonesia 5, no. 2 (2011): 125–31. http://dx.doi.org/10.5454/mi.5.3.5.

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29

Uwumarongie, A. M., R. K. A. Egharevba, and Y. Waizah. "Effects of NPK 15:15:15 Fertilizer on the Growth and Yield of Two Landrace of Snake Tomatoes, (Trichosanthes cucumerina L.)." Greener Journal of Agricultural Sciences 3, no. 9 (2013): 669–77. http://dx.doi.org/10.15580/gjas.2013.3.110913835.

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30

Adebooye, Odunayo Clement, Michaela Schmitz-Eiberger, Christa Lankes, and Georg J. Noga. "Inhibitory effects of sub-optimal root zone temperature on leaf bioactive components, photosystem II (PS II) and minerals uptake in Trichosanthes cucumerina L. Cucurbitaceae." Acta Physiologiae Plantarum 32, no. 1 (2009): 67–73. http://dx.doi.org/10.1007/s11738-009-0379-z.

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31

Ugbaja, Clementina Chekwube, Oluwasegun Olamide Fawibe, Abiodun Sunday Oyelakin, Idris Olatoye Fadimu, Abiodun Akeem Ajiboye, and David Adejare Agboola. "Comparative Phytochemical and Nutritional Composition of <i>Trichosanthes cucumerina</i> (L.) and Some<i> Solanum lycopersicum </i>(L.) Cultivars in Nigeria." American Journal of Plant Sciences 08, no. 02 (2017): 297–309. http://dx.doi.org/10.4236/ajps.2017.82021.

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32

UWUMARONGIE, A. M. D., O. A. EMUEDO, E. O. UZUNUIGBE, et al. "COMPARATIVE EFFECTS OF SOIL AMENDMENTS ON SOME POST-HARVEST SOIL CHEMICAL PROPERTIES IN A THREE AND FOUR YEAR OLD RUBBER PLANTATIONS INTERCROPPED WITH SNAKE TOMATO (TRICHOSANTHES CUCUMERINA L. HAINES) IN IYANOMO." Greener Journal of Soil Science and Plant Nutrition 8, no. 1 (2024): 1–9. https://doi.org/10.15580/gjsspn.2024.1.120223150.

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The soil is very central to crop production and fertility management of rubber at the juvenile stage is critical to the productivity of rubber at maturity. The field study was conducted in 2018 and 2019 cropping season to determine the effects of rubber effluent and NPK 15:15:15 applications following cropping with rubber and snake on some post-harvest soil chemical properties in a three and four years old rubber plantation. The treatments involved a combination of sole and intercropped combination with NPK and rubber effluent application rates laid out in a randomized complete block design in
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33

Devi, N. "Medicinal Values of Trichosanthus cucumerina L. (Snake Gourd) - A Review." British Journal of Pharmaceutical Research 16, no. 5 (2017): 1–10. http://dx.doi.org/10.9734/bjpr/2017/33575.

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34

Eyong, O. I., E. E. Ekpiken, D. E. Akam, and A. T. Owolabi. "Identification of Mixed Virus Infection on Trichosanthes cucumerina L. in Akamkpa, Southern Cross River State, Nigeria." Asian Journal of Advances in Agricultural Research, May 19, 2021, 53–58. http://dx.doi.org/10.9734/ajaar/2021/v15i230150.

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Trichosanthes cucumerina L is a tropical or subtropical fruit bearing crop of the Cucurbitaceae family. Field survey during 2020 planting season in Akamkpa, Southern Cross River State, Nigeria revealed widespread virus infection of the crop. Symptoms observed included severe leaf malformation/reduction and rugosity. This research was therefore aimed at identifying viruses infecting Trichosanthes cucumerina in this location. Infected leaf samples were collected and virus maintained on young seedlings of T. cucumerina in the Botanical Garden of University of Calabar, Nigeria. Diagnostic tools in
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35

"CYTOTOXIC PROTEIN FROM Trichosanthes cucumerina L. var anguina (L.) Haines." BIOTROPIA 17, no. 1 (2010). http://dx.doi.org/10.11598/btb.2010.17.1.54.

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36

Hunsakunachai, Natthaphon, Nitra Nuengchamnong, Weena Jiratchariyakul, Tanawan Kummalue, and Phisit Khemawoot. "Pharmacokinetics of cucurbitacin B from Trichosanthes cucumerina L. in rats." BMC Complementary and Alternative Medicine 19, no. 1 (2019). http://dx.doi.org/10.1186/s12906-019-2568-7.

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37

Adeyemo, Oyenike, Olanrewaju Olaitan, and Oshinowo Smith. "Variations in phytochemicals, proximate and nutrient constituents of Trichosanthes cucumerina L. plant (804.32)." FASEB Journal 28, S1 (2014). http://dx.doi.org/10.1096/fasebj.28.1_supplement.804.32.

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38

R., Suriya,. "Effect of Organic Manures on Germination and Growth of Snake Gourd (Trichosanthes cucumerina L.)." International Journal of Agriculture Environment and Biotechnology 15, Special (2022). http://dx.doi.org/10.30954/0974-1712.03.2022.25.

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39

SURIYA, R., and P. MADHANAKUMARI. "Optimization of yield and quality parameters in snake gourd using integrated nutrient management (Trichosanthes cucumerina L.)." Crop Research VOLUME 57, ISSUE 5 & 6 (NOVEMBER) (2022). http://dx.doi.org/10.31830/2454-1761.2022.cr-887.

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The intensive use of inorganic fertilizer in agriculture for ensuring the world food security caused so many health problems and unrecoverable environmental pollution. In view of this context, a study was conducted during two seasons viz., season I (August-November 2021) and season II (January-April 2022) at Karur district, Tamil Nadu, India to study the influences of organic manures and bio-stimulants on the yield and quality parameters of snake gourd. The experiment was laid out in randomized block design with nine treatments replicated thrice. Organic manures used for the study were farm ya
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40

"GROWTH, YIELD AND QUALITY OF SNAKE GOURD (TRICHOSANTHES CUCUMERINA L.) VARIETIES AS INFLUENCED BY PRUNING PRACTICE." Plant Archives 25, no. 1 (2025). https://doi.org/10.51470/plantarchives.2025.v25.no.1.026.

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41

Weng, Yi-Ying, Wei-Cen Liou, yuanyu chien, et al. "First Report of 16SrII-V Peanut Witches’ Broom Phytoplasma in Snake Gourd (Trichosanthes cucumerina L.) in Taiwan." Plant Disease, March 29, 2021. http://dx.doi.org/10.1094/pdis-12-20-2666-pdn.

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Snake gourd (Trichosanthes cucumerina L.), an annual climbing plant belonging to the family of Cucurbitaceae, is native to Southeast Asia countries, e.g., India, Pakistan, Malaysia, China, and Indonesia. It is commonly consumed as a vegetable and also used as a traditional herbal medicine due to the antidiabetic, anti-inflammatory, antibacterial, hepatoprotective, and cytotoxic activities (Devi 2017). In September 2020, phytoplasma-induced disease symptoms such as little leaf, yellowing, phyllody, virescence, and witches' broom were observed on snake gourd in Yunlin County, Taiwan. The cross-s
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42

Adebooye, OC. "Phyto-Constituents And Anti-Oxidant Activity Of The Pulp Of Snake Tomato (Trichosanthes cucumerina L.)." African Journal of Traditional, Complementary and Alternative Medicines 5, no. 2 (2008). http://dx.doi.org/10.4314/ajtcam.v5i2.31270.

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43

Lertphadungkit, Pornpatsorn, Xue Qiao, Supaart Sirikantaramas, Veena Satitpatipan, Min Ye, and Somnuk Bunsupa. "De novo transcriptome analysis and identification of candidate genes associated with triterpenoid biosynthesis in Trichosanthes cucumerina L." Plant Cell Reports, July 6, 2021. http://dx.doi.org/10.1007/s00299-021-02748-8.

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44

Liu, Cheng-Li, Jie-Mei Deng, Hong-Mei Yan, and Heng-Yu Huang. "In vitro cluster buds regeneration and control of shoot tip necrosis in tissue cultures of Trichosanthes cucumerina L." Plant Cell, Tissue and Organ Culture (PCTOC) 159, no. 1 (2024). http://dx.doi.org/10.1007/s11240-024-02883-6.

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45

Lertphadungkit, Pornpatsorn, Xue Qiao, Min Ye, and Somnuk Bunsupa. "Characterization of oxidosqualene cyclases from Trichosanthes cucumerina L. reveals key amino acids responsible for substrate specificity of isomultiflorenol synthase." Planta 256, no. 3 (2022). http://dx.doi.org/10.1007/s00425-022-03972-6.

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46

Mollik, Md Ariful Haque. "Combination of trichosanthes cucumerina L. compounds: an analysis for novel effects of anticancer cell activites as probes for pharmacological studies." Journal for ImmunoTherapy of Cancer 1, S1 (2013). http://dx.doi.org/10.1186/2051-1426-1-s1-p134.

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Kage, Devendra N., Vijaykumar B. Malashetty, Y. N. Seetharam, P. Suresh, and Saraswati B. Patil. "Effect of Ethanol Extract of Whole Plant of Trichosanthes cucumerina var. cucumerina L. on Gonadotropins, Ovarian Follicular Kinetics and Estrous Cycle for Screening of Antifertility Activity in Albino Rats." International Journal of Morphology 27, no. 1 (2009). http://dx.doi.org/10.4067/s0717-95022009000100030.

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Aboyeji, Christopher Muyiwa, Temidayo A. Joseph Olofintoye, Wanger Barnabas Akaazua, et al. "Sole and integrated applications of legume crop residues and poultry manure: effects on performance and quality of Trichosanthes cucumerina (L.)." Biological Agriculture & Horticulture, July 11, 2025, 1–19. https://doi.org/10.1080/01448765.2025.2531942.

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Uwumarongie, A. M. D., O. A. Emuedo, E. O. Uzunuigbe, et al. "Influence of Rubber Effluent and NPK Fertilizer on the Performance and Fruit Quality of Snake Tomato (Trichosanthes cucumerina L. Haines) in a Three and Four Years Old (An Existing) Rubber Plantation." International Journal of Plant & Soil Science, September 24, 2022, 164–76. http://dx.doi.org/10.9734/ijpss/2022/v34i2331576.

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Abstract:
Small holder rubber farmer that account for over 75% of rubber production in Nigeria has withdrawn from production as a result of income gap created by the long gestation period of rubber amidst other agronomic challenges, hence the need to create an agronomic system that will incorporate other compactable short duration to generate additional and early source of income and take care of other agronomic challenges. An experiment was conducted in 2018 and 2019 cropping seasons to evaluate the influence of rubber effluent and NPK fertilizer on the performance and fruit quality of snake tomato in
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