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1

Dangwal, Pranshu, Saransh Juyal, Arun Bhatt, Mamta Baunthiyal, and Dev Bukhsh Singh. "Molecular docking and simulation analysis of nimbolide with poly-galacturonase from Aspergillus niger: Managing black mold disease for Allium cepa." Bioinformation 21, no. 05 (2025): 1050–56. https://doi.org/10.6026/973206300211050.

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Black mold disease is a major post-harvest issue in Allium cepa caused by Aspergillus niger. Therefore, it is of interest to describe the molecular docking and simulation analysis of poly-galacturonase protein from Aspergillus Niger that is involved in disease progression as a promising molecular target for the identification of novel fungicides. Hence, we used I-TASSER to model the protein and docked it with the naturally occurring phytoalexins, which included nimbolide, nimbolin, Azadiradione, Quercetin and Azadirone. We show that nimbolide has the greatest affinity towards poly-galacturonas
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2

Shin, Seung-Shick, Byungdoo Hwang, Kashif Muhammad, et al. "Nimbolide Represses the Proliferation, Migration, and Invasion of Bladder Carcinoma Cells via Chk2-Mediated G2/M Phase Cell Cycle Arrest, Altered Signaling Pathways, and Reduced Transcription Factors-Associated MMP-9 Expression." Evidence-Based Complementary and Alternative Medicine 2019 (July 14, 2019): 1–12. http://dx.doi.org/10.1155/2019/3753587.

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Nimbolide, an active chemical constituent of Azadirachta indica, reportedly has several physiological effects. Here, we assessed novel anticancer effects of nimbolide against bladder cancer EJ and 5637 cells. Nimbolide treatment inhibited the proliferation of both bladder cancer cell lines with an IC50 value of 3 μM. Treatment of cells with nimbolide induced G2/M phase cell cycle arrest via both Chk2-Cdc25C-Cdc2/cyclin B1-Wee1 pathway and Chk2-p21WAF1-Cdc2/cyclin B1-Wee1 pathway. Nimbolide increased JNK phosphorylation and decreased p38MAPK and AKT phosphorylation. Additionally, nimbolide impe
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3

Lee, Jung-Eun, and Dong-Soon Im. "Inhibitory Effect of Nimbolide on Mast Cell Degranulation and Allergic Asthma in Mice." Yakhak Hoeji 66, no. 5 (2022): 217–24. http://dx.doi.org/10.17480/psk.2022.66.5.217.

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The Indian neem tree has been used for treating several medical conditions. Nimbolide, an active compound present in the leaves of the Indian neem tree, has shown anti-inflammatory effects in several animal models. However, its efficacy against allergic asthma has not been examined. Therefore, we investigated the effects of nimbolide on mast cell degranulation and ovalbumin-induced allergic asthma in mice. Nimbolide administration inhibited antigen-induced degranulation of RBL-2H3 cells in a concentration-dependent manner and reduced the immune cell numbers by suppressing the expression of inf
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4

Dhanya, S. R., S. Nishanth Kumar, Vandana Sankar, K. G. Raghu, B. S. Dileep Kumar, and Mangalam S. Nair. "Nimbolide from Azadirachta indica and its derivatives plus first-generation cephalosporin antibiotics: a novel drug combination for wound-infecting pathogens." RSC Advances 5, no. 109 (2015): 89503–14. http://dx.doi.org/10.1039/c5ra16071e.

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We evaluate the in vitro efficacy of nimbolide, desacetylnimbin, and the amide derivatives of nimbolide in combination with first-generation cephalosporin antibiotics against major wound-associated bacterial pathogens.
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5

Suttiarporn, Panawan, and Vachira Choommongkol. "Microwave-Assisted Improved Extraction and Purification of Anticancer Nimbolide from Azadirachta indica (Neem) Leaves." Molecules 25, no. 12 (2020): 2913. http://dx.doi.org/10.3390/molecules25122913.

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Nimbolide, a limonoid present in leaves of the neem tree (Azadirachta indica), is an anticancer compound against a panel of human cancer cell lines. The rapid process of extraction and purification of the nimbolide from the leaves of neem tree through microwave-assisted extraction (MAE) coupled with a chromatographic technique was accomplished. The crude with a maximum content of nimbolide could be recovered from neem leaves through MAE. By using three-factors, three-level Box–Behnken design of response surface methodology (RSM), the optimal conditions for nimbolide extraction (R2 = 0.9019) we
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6

Wang, Lingzhi, Do-Dang Phan, Nicholas Syn, et al. "A Sensitive Liquid Chromatography-Tandem Mass Spectrometry Method for the Determination of Nimbolide in Mouse Serum: Application to a Preclinical Pharmacokinetics Study." Pharmaceutics 10, no. 3 (2018): 123. http://dx.doi.org/10.3390/pharmaceutics10030123.

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A sensitive and robust liquid chromatography-tandem mass spectrometric (LC-MS/MS) method was developed and validated for the determination of nimbolide in mouse serum. Exemestane was used as the internal standard (IS). Here, we employed acetonitrile-based protein precipitation (PPT) for serum sample preparation, and performed chromatographic separation using an ODS Hypersil C18 column (100 mm × 2.1 mm, 5 µm) with gradient elution (0.1% formic acid in water vs 100% acetonitrile). The run time was 6 min. Instrumental analysis was performed by electrospray ionization tandem mass spectrometry (ESI
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7

Anitha, G., J. Josepha Lourdu Raj, S. Narasimhan, K. Anand Solomon, and S. S. Rajan. "Nimbolide and isonimbolide." Journal of Asian Natural Products Research 8, no. 5 (2006): 445–49. http://dx.doi.org/10.1080/10286020500173267.

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8

Li, Peng, Yuanli Zhen, Chiho Kim, et al. "Abstract PR002: Nimbolide targets RNF114 to induce the trapping of PARP1 and synthetic lethality in BRCA-mutated cancer." Molecular Cancer Therapeutics 23, no. 6_Supplement (2024): PR002. http://dx.doi.org/10.1158/1538-8514.synthleth24-pr002.

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Abstract Despite the tremendous success of PARP1 inhibitors (PARPi) for the treatment of BRCA mut tumors, intrinsic and acquired resistance to PARPi remains a critical challenge in the clinic. This is, at least in part, due to the incomplete understanding of the mechanism of action (MoA) of PARPi. Recent studies from both our lab and others have pointed to PARP1 trapping as a key determinant of the anticancer effects of PARP1 inhibitors (PARPi). However, the molecular underpinnings of PARP1 trapping are poorly understood. Here we performed a proteomics-based chromatin relocalization screen, an
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9

Zhang, Tianchan, Xumeng Gu, Juan Du, Yang Yu, and Huifang Cong. "Nimbolide as a bioactive compound in food science: inhibition of proliferation and glycolysis in endometriosis cells." Italian Journal of Food Science 37, no. 2 (2025): 241–51. https://doi.org/10.15586/ijfs.v37i2.2948.

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Endometriosis is a common gynecological disorder characterized by the ectopic growth of endometrial-like tis-sue, often leading to chronic pain and infertility. Despite its high prevalence, the underlying mechanisms are still poorly understood. Nimbolide, a bioactive compound derived from Azadirachta indica (neem), has been shown to possess various biological activities, including anti-malarial, anti-inflammatory, and anti-cancer prop-erties. However, its effects on endometriosis have largely remained unexplored. Human endometriosis cell lines (End1/E6E7) were cultured and treated with varying
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10

NT, Chaitra, Ravindranath H. Aladakatti, and Nandeshwarappa B P. "Effect of nimbolide on rat spermatozoa under in-vitro condition: A study on sperm functional events and antioxidants during capacitation." Journal of Laboratory Animal Science 7, no. 1 (2024): 10–23. https://doi.org/10.48165/jlas.2024.7.1.3.

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However, little evidence has been documented to evaluate the clear specific effects of neem-active ingredients in a rat model. This study aims to evaluate the in vitro effects of nimbolide (tetranortriterpenoids group, one of the main components of neem leaves), particularly on sperm functional studies, and biochemical and molecular events during capacitation in a dose dependent manner. The results showed a dose- and time-dependent decrease in the functional consequence of capacitation process i.e., motility score, percentage of motile spermatozoa, Sperm Motility Index (SMI) and levels of mole
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11

Anand Solomon, K., R. Malathi, S. S. Rajan, et al. "The isomeric compounds nimbolide and isonimbolide." Acta Crystallographica Section C Crystal Structure Communications 61, no. 2 (2005): o70—o72. http://dx.doi.org/10.1107/s0108270104031385.

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12

Kasala, E. R., L. N. Bodduluru, and C. C. Barua. "Nimbolide inhibits invasion of breast cancer." Cell Proliferation 48, no. 2 (2015): 117–18. http://dx.doi.org/10.1111/cpr.12170.

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13

CHIJIOKE OZIOKO, PAUL, UKAMAKA OWOHETETE, and DANIEL DANLADI GAIYA. "DRUGGABILITY AND MOLECULAR DOCKING OF ESSENTIAL SECONDARY METABOLITES FROM Azadirachta indica LEAF AGAINST ANGIOTENSIN CONVERTING ENZYME-2: COVID-19 IN FOCUS." AFRICAN JOURNAL OF PHARMACEUTICAL RESEARCH AND DEVELOPMENT 16, no. 3 (2024): 12–24. https://doi.org/10.59493/ajopred/2024.3.3.

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Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is a highly infectious and virulent coronavirus that arose in late 2019 and poses great risk to public health and safety. The SARS-CoV-2 utilizes peptidase, angiotensin-converting enzyme 2 (ACE2) for entrance and invasion into host cells. Thus, this study explored the in-silico druggability and molecular docking of essential secondary metabolites (ESMs) from Azadirachta indica leaf as potential inhibitors of ACE-2, a main receptor for the SARS-CoV-2 virus causing the COVID-19 pandemic. Through a literature survey and database mining
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14

Chien, Su-Yu, Ching-Hui Hsu, Chia-Chieh Lin, et al. "Nimbolide induces apoptosis in human nasopharyngeal cancer cells." Environmental Toxicology 32, no. 8 (2017): 2085–92. http://dx.doi.org/10.1002/tox.22423.

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15

Srivastava, Ankita, and Neelabh. "In-silico study of some natural compounds used as antifungal agents against Candida albicans." European Journal of Biological Research 10, no. 3 (2020): 188–97. https://doi.org/10.5281/zenodo.3911299.

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Fungal diseases are very common these days, so there is a high need to design and develop new antifungal drugs that can counter these diseases. <em>Candida albicans</em> is one of the opportunistic pathogenic yeasts that can cause serious diseases such as oropharyngeal candidiasis, vulvovaginal (genital) candidiasis, and invasive candidiasis (candidemia). This article focuses on the in-silico evaluation of anti-candidal activity of some natural compounds like ajoene, allicin, curcumin, gingerol, nimbin, nimbolide, nimonol and 6-Shogaol. Binding affinity of these compounds have been determined
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16

Mahapatra, Saswati, Charles Y. F. Young, Manish Kohli, et al. "Antiangiogenic Effects and Therapeutic Targets ofAzadirachta indicaLeaf Extract in Endothelial Cells." Evidence-Based Complementary and Alternative Medicine 2012 (2012): 1–14. http://dx.doi.org/10.1155/2012/303019.

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Azadirachta indica(common name: neem) leaves have been found to possess immunomodulatory, anti-inflammatory and anti-carcinogenic properties. The present study evaluates anti-angiogenic potential of ethanol extract of neem leaves (EENL) in human umbilical vein endothelial cells (HUVECs). Treatment of HUVECs with EENL inhibited VEGF induced angiogenic responsein vitroandin vivo. Thein vitroproliferation, invasion and migration of HUVECs were suppressed with EENL. Nuclear fragmentation and abnormally small mitochondria with dilated cristae were observed in EENL treated HUVECs by transmission ele
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17

Wylie, Marina R., Ian H. Windham, Faith C. Blum, Hannah Wu, and D. Scott Merrell. "In vitro antibacterial activity of nimbolide against Helicobacter pylori." Journal of Ethnopharmacology 285 (March 2022): 114828. http://dx.doi.org/10.1016/j.jep.2021.114828.

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18

Pooladanda, Venkatesh, Soumya Bandi, Sandhya Rani Mondi, Krishna Mohan Gottumukkala, and Chandraiah Godugu. "Nimbolide epigenetically regulates autophagy and apoptosis in breast cancer." Toxicology in Vitro 51 (September 2018): 114–28. http://dx.doi.org/10.1016/j.tiv.2018.05.010.

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19

Sastry, B. S., K. Suresh Babu, T. Hari Babu, et al. "Synthesis and biological activity of amide derivatives of nimbolide." Bioorganic & Medicinal Chemistry Letters 16, no. 16 (2006): 4391–94. http://dx.doi.org/10.1016/j.bmcl.2006.05.105.

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20

Elumalai, Perumal, and Jagadeesan Arunakaran. "Review on Molecular and Chemopreventive Potential of Nimbolide in Cancer." Genomics & Informatics 12, no. 4 (2014): 156. http://dx.doi.org/10.5808/gi.2014.12.4.156.

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21

Tong, Bingqi, Jessica N. Spradlin, Luiz F. T. Novaes, et al. "A Nimbolide-Based Kinase Degrader Preferentially Degrades Oncogenic BCR-ABL." ACS Chemical Biology 15, no. 7 (2020): 1788–94. http://dx.doi.org/10.1021/acschembio.0c00348.

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22

Cohen, Ephraim, Gary B. Quistad, and John E. Casida. "Cytotoxicity of nimbolide, epoxyazadiradione and other limonoids from neem insecticide." Life Sciences 58, no. 13 (1996): 1075–81. http://dx.doi.org/10.1016/0024-3205(96)00061-6.

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23

Guswanto, Azirwan, Thillaiampalam Sivakumar, Mohamed Abdo Rizk, et al. "Evaluation of a Fluorescence-Based Method for Antibabesial Drug Screening." Antimicrobial Agents and Chemotherapy 58, no. 8 (2014): 4713–17. http://dx.doi.org/10.1128/aac.00022-14.

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ABSTRACTIn vitroevaluation of chemotherapeutic agents againstBabesiaandTheileriaparasites has become routine, and the effectiveness of these chemicals is usually determined by comparing the parasitemia dynamics of untreated and treated parasites. Although microscopy is widely used to calculate parasitemia, several disadvantages are associated with this technique. The present study evaluated a fluorescence-based method using SYBR green I stain (SG I) to screen antibabesial agents inin vitrocultures ofBabesia bovis. The linearity between relative fluorescence units (RFU) and parasitemia was foun
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24

Liu, Ju-Fang, Chun-Han Hou, Feng-Ling Lin, Ya-Ting Tsao, and Sheng-Mou Hou. "Nimbolide Induces ROS-Regulated Apoptosis and Inhibits Cell Migration in Osteosarcoma." International Journal of Molecular Sciences 16, no. 10 (2015): 23405–24. http://dx.doi.org/10.3390/ijms161023405.

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25

Wang, Lingzhi, Do Dang Khoa Phan, Jingwen Zhang, et al. "Anticancer properties of nimbolide and pharmacokinetic considerations to accelerate its development." Oncotarget 7, no. 28 (2016): 44790–802. http://dx.doi.org/10.18632/oncotarget.8316.

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26

Bodduluru, Lakshmi Narendra, Eshvendar Reddy Kasala, Nagaraju Thota, Chandana C. Barua, and Ramakrishna Sistla. "Chemopreventive and therapeutic effects of nimbolide in cancer: The underlying mechanisms." Toxicology in Vitro 28, no. 5 (2014): 1026–35. http://dx.doi.org/10.1016/j.tiv.2014.04.011.

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27

Spradlin, Jessica N., Xirui Hu, Carl C. Ward, et al. "Harnessing the anti-cancer natural product nimbolide for targeted protein degradation." Nature Chemical Biology 15, no. 7 (2019): 747–55. http://dx.doi.org/10.1038/s41589-019-0304-8.

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28

Cohen, Ephraim, Gary B. Quistad, Phillip R. Jefferies, and John E. Casida. "Nimbolide is the Principal Cytotoxic Component of Neem-Seed Insecticide Preparations." Pesticide Science 48, no. 2 (1996): 135–40. http://dx.doi.org/10.1002/(sici)1096-9063(199610)48:2<135::aid-ps451>3.0.co;2-j.

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29

Mehmetoglu-Gurbuz, Tugba, Rajkumar Lakshmanaswamy, Karla Perez, et al. "Nimbolide Inhibits SOD2 to Control Pancreatic Ductal Adenocarcinoma Growth and Metastasis." Antioxidants 12, no. 10 (2023): 1791. http://dx.doi.org/10.3390/antiox12101791.

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Reactive oxygen species are frequently associated with various cancers including pancreatic ductal adenocarcinomas (PDACs). Superoxide dismutase 2 (SOD2) is an enzyme that plays an important role in reactive oxygen species (ROS) signaling. Investigating the molecular function and biological functions of SOD2 can help us develop new therapeutic options and uncover new biomarkers for PDAC diagnosis and prognosis. Here, we show that nimbolide (NB), a triterpene limonoid, effectively blocks the growth and metastasis of PDACs by suppressing the expression and activity of SOD2. To identify the role
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30

Li, Peng, Yuanli Zhen, Chiho Kim, et al. "Abstract B023: Nimbolide targets RNF114 to induce the trapping of PARP1 and synthetic lethality in BRCA-mutated cancer." Molecular Cancer Therapeutics 23, no. 6_Supplement (2024): B023. http://dx.doi.org/10.1158/1538-8514.synthleth24-b023.

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Abstract This abstract is being presented as a short talk in the scientific program. A full abstract is printed in the Proffered Abstracts section (PR002) of the Conference Program/Proceedings. Citation Format: Peng Li, Yuanli Zhen, Chiho Kim, Zhengshuai Liu, Jianwei Hao, Heping Deng, Hejun Deng, Min Zhou, Xu-Dong Wang, Tian Qin, Yonghao Yu. Nimbolide targets RNF114 to induce the trapping of PARP1 and synthetic lethality in BRCA-mutated cancer [abstract]. In: Proceedings of the AACR Special Conference in Cancer Research: Expanding and Translating Cancer Synthetic Vulnerabilities; 2024 Jun 10-1
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31

Pooladanda, Venkatesh, Sowjanya Thatikonda, Omprakash Sunnapu, et al. "iRGD conjugated nimbolide liposomes protect against endotoxin induced acute respiratory distress syndrome." Nanomedicine: Nanotechnology, Biology and Medicine 33 (April 2021): 102351. http://dx.doi.org/10.1016/j.nano.2020.102351.

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32

Manga, Bandari, Banoth Venkateswara Rao, Kopparapu Sudeshna, et al. "Design, synthesis and cytotoxic activity studies of alkyne linked analogues of Nimbolide." Fitoterapia 161 (September 2022): 105246. http://dx.doi.org/10.1016/j.fitote.2022.105246.

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33

Bokel, M., R. Cramer, H. Gutzeit, S. Reeb, and W. Kraus. "Tetranortriterpenoids related to nimbin and nimbolide from Azadirachta indica A. Juss (Meliaceae)." Tetrahedron 46, no. 3 (1990): 775–82. http://dx.doi.org/10.1016/s0040-4020(01)81360-0.

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34

Glinsukon, Thirayudh, Rosenee Somjaree, Pawinee Piyachaturawat, and Yodhathai Thebtaranonth. "Acute toxicity of nimbolide and nimbic acid in mice, rats and hamsters." Toxicology Letters 30, no. 2 (1986): 159–66. http://dx.doi.org/10.1016/0378-4274(86)90098-6.

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35

Alshammari, Ghedeir M., Aristatile Balakrishnan, and Thirunavukkarasu Chinnasamy. "Nimbolide attenuate the lipid accumulation, oxidative stress and antioxidant in primary hepatocytes." Molecular Biology Reports 44, no. 6 (2017): 463–74. http://dx.doi.org/10.1007/s11033-017-4132-1.

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36

Kigodi, Phillip G. K., Gábor Blaskó, Yodhathai Thebtaranonth, John M. Pezzuto, and Geoffrey A. Cordell. "Spectroscopic and Biological Investigation of Nimbolide and 28-Deoxonimbolide from Azadirachta indica." Journal of Natural Products 52, no. 6 (1989): 1246–51. http://dx.doi.org/10.1021/np50066a008.

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37

Chitta, K., A. Paulus, T. R. Caulfield, et al. "Nimbolide targets BCL2 and induces apoptosis in preclinical models of Waldenströms macroglobulinemia." Blood Cancer Journal 4, no. 11 (2014): e260-e260. http://dx.doi.org/10.1038/bcj.2014.74.

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38

Ashok, Borude Sanket, Prof Priyanka Vitthal Jadhav, and prof Ajay Baburao Shirsa. "Azadirachta indica: A Medicinal Plant with Many Uses for Immunity, Cancer, and Digestive Disorders." International Journal of Pharmaceutical Research and Applications 09, no. 05 (2024): 431–34. https://doi.org/10.35629/4494-0905431434.

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Azadirachta indica, a tropical plant widely used for its many therapeutic uses, is also referred to as neem. This review focuses on how it may help with digestive issues, cancer prevention and treatment, and immunity enhancement. The plant’s bioactive substances, such as azadirachtin, nimbin, and nimbolide, have anticancer, immunomodulatory, and gastroprotective properties. Research reveals that neem can boost immunity, cause cancer cells to undergo apoptosis, and lessen gastrointestinal tract irritation. Its potential for medicinal use is further enhanced by its antioxidant and antibacterial
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39

Nagini, Siddavaram, Ramesh Nivetha, Manikandan Palrasu, and Rajakishore Mishra. "Nimbolide, a Neem Limonoid, Is a Promising Candidate for the Anticancer Drug Arsenal." Journal of Medicinal Chemistry 64, no. 7 (2021): 3560–77. http://dx.doi.org/10.1021/acs.jmedchem.0c02239.

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40

Navinraj, S., V. P. Santhanakrishnan, N. Manikanda Boopathi, et al. "Establishment of cell suspension cultures of Azadirachta indica for the production of nimbolide." Medicinal Plants - International Journal of Phytomedicines and Related Industries 14, no. 1 (2022): 105–12. http://dx.doi.org/10.5958/0975-6892.2022.00011.9.

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41

Cui, Xin, Ruijing Wang, Peimin Bian, Qingke Wu, Vidya Devanatha Desikan Seshadri, and Lun Liu. "Evaluation of antiarthritic activity of nimbolide against Freund’s adjuvant induced arthritis in rats." Artificial Cells, Nanomedicine, and Biotechnology 47, no. 1 (2019): 3391–98. http://dx.doi.org/10.1080/21691401.2019.1649269.

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42

Diddi, Snehalatha, Swarna Bale, Gauthami Pulivendala, and Chandraiah Godugu. "Nimbolide ameliorates fibrosis and inflammation in experimental murine model of bleomycin-induced scleroderma." Inflammopharmacology 27, no. 1 (2018): 139–49. http://dx.doi.org/10.1007/s10787-018-0527-4.

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43

Muhammad Anees, Anna Rakhmawati, Kartika Ratna Pertiwi, and Sajid Iqbal. "Integrating Neem’s Medicinal Properties into Microbiology Education A Systematic Review." Quagga: Jurnal Pendidikan dan Biologi 17, no. 2 (2025): 136–49. https://doi.org/10.25134/quagga.v17i2.385.

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This systematic review investigates the integration of Azadirachta indica (Neem) as potential learning resources into Microbiology topics in Biology learning, focusing on its bioactive compounds and medicinal properties such as antimicrobial agent. Neem’s bioactive compounds, such as azadirachtin, nimbolide, and gedunin, exhibit potent antimicrobial activity against a broad spectrum of pathogens, including E. coli, S. aureus, and Candida albicans. These properties make Neem a compelling natural alternative in the fight against antimicrobial resistance (AMR), a growing global health concern. Dr
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44

Patra, Arjun, Swaha Satpathy, and Muhammad Delwar Hussain. "Nanodelivery and anticancer effect of a limonoid, nimbolide, in breast and pancreatic cancer cells." International Journal of Nanomedicine Volume 14 (October 2019): 8095–104. http://dx.doi.org/10.2147/ijn.s208540.

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45

Mahmoud, Nuha, Mohamed E. M. Saeed, Yoshikazu Sugimoto, Sabine M. Klauck, Henry J. Greten, and Thomas Efferth. "Cytotoxicity of nimbolide towards multidrug-resistant tumor cells and hypersensitivity via cellular metabolic modulation." Oncotarget 9, no. 87 (2018): 35762–79. http://dx.doi.org/10.18632/oncotarget.26299.

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46

Kato-Noguchi, Hisashi, Md Salam, Osamu Ohno, and Kiyotake Suenaga. "Nimbolide B and Nimbic Acid B, Phytotoxic Substances in Neem Leaves with Allelopathic Activity." Molecules 19, no. 6 (2014): 6929–40. http://dx.doi.org/10.3390/molecules19066929.

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47

Kumar, Sandeep, Joseph R. Inigo, Rahul Kumar, et al. "Nimbolide reduces CD44 positive cell population and induces mitochondrial apoptosis in pancreatic cancer cells." Cancer Letters 413 (January 2018): 82–93. http://dx.doi.org/10.1016/j.canlet.2017.10.029.

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Zahran Mohamed, Faten, Amr Saad Mohamed, Fathy Mohamed Abd El-Galil, and Noha Gamal Haikel. "Antitumor activity of Neem leaf Extract and Nimbolide on Ehrlich Ascites Carcinoma Cells in Mice." Biochemistry Letters 10, no. 1 (2015): 27–41. http://dx.doi.org/10.21608/blj.2015.63390.

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Xia, Dingchao, Dazhi Chen, Tingchen Cai, et al. "Nimbolide attenuated the inflammation in the liver of autoimmune hepatitis's mice through regulation of HDAC3." Toxicology and Applied Pharmacology 434 (January 2022): 115795. http://dx.doi.org/10.1016/j.taap.2021.115795.

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Kumar, K., S. Jayaraman, and S. Narasimhan. "A simple and rapid method of estimation of nimbolide, an anticancer constituent in neem leaves." Journal of Planar Chromatography – Modern TLC 21, no. 4 (2008): 263–65. http://dx.doi.org/10.1556/jpc.21.2008.4.7.

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