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1

Eslamieh, Jason. "Commiphora gileadensis." Cactus and Succulent Journal 83, no. 5 (2011): 206–10. http://dx.doi.org/10.2985/0007-9367-83.5.206.

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2

Borde, Manjusha K., Ipseeta Ray Mohanty, Ujwala Maheshwari, Rajesh Kumar Suman, and Y. A. Deshmukh. "DPP-4 inhibitory activity and myocardial salvaging effects of Commiphora mukul in experimental diabetes." International Journal of Basic & Clinical Pharmacology 8, no. 3 (2019): 575. http://dx.doi.org/10.18203/2319-2003.ijbcp20190668.

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Background: Commiphora mukul (Burseraceae) is commonly known as Guggul in Ayurveda. Several studies have reported antidiabetic activity of Commiphora mukul but there are no studies to explore the DPP-4 inhibitory activity and myocardial salvaging effects of Commiphora mukul in setting of diabetes mellitus. The present study was designed to evaluate the cardioprotective efficacy as well as safety of the medicinal plant Commiphora mukul (Guggul) in the experimental model of myocardial infarction co-existing with diabetes.Methods: Diabetes was induced with single dose of streptozotocin (STZ): 45m
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3

Sultana, Nighat, and Sarwat Jahan. "Studies on the Constituents of Commiphora mukul." Zeitschrift für Naturforschung B 60, no. 11 (2005): 1202–6. http://dx.doi.org/10.1515/znb-2005-1114.

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Studies on ommiphora mukul (Hook, ex stock) Engl. have led to the isolation of a new lignan (+)-commiphorin (1), a new fatty acid ester, (+)-commiphotetrol (2) along with (-)- hydroxyisohopane (3) [1], which is the first report of this compound from Commiphora mukul of Pakistan origin, Z and E-guggulsterones, cholesterol and guggulsterol-II (4). Of these complete 1H and 13C NMR data of guggulsterol-II (4) is assigned for the first time [2]. The structures of the compounds were elucidated with the help of extensive spectroscopic studies [3, 4]. Compound 1 have shown antibacterial activity again
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4

Hanus, Lumir O., Tomas Rezanka, Valery M. Dembitsky, and Arieh Moussaieff. "Myrrh - Commiphora chemistry." Biomedical Papers 149, no. 1 (2005): 3–28. http://dx.doi.org/10.5507/bp.2005.001.

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5

Ragavi, R., and Saritha A. Surendran. "Commiphora mukul: An Overview." Research Journal of Pharmacy and Technology 11, no. 7 (2018): 3205. http://dx.doi.org/10.5958/0974-360x.2018.00589.9.

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6

Sairkar, Pramod Kumar, Anjana Sharma, and N. P. Shukla. "SCAR Marker for Identification and Discrimination of Commiphora wightii and C. myrrha." Molecular Biology International 2016 (March 16, 2016): 1–10. http://dx.doi.org/10.1155/2016/1482796.

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Commercially important Commiphora species are drought-tolerant plants and they are leafless for most of the year. Therefore, it is necessary to develop some molecular marker for the identification. Intended for that, in the present study, species-specific, sequence-characterized amplified regions (SCAR) markers were developed for proficient and precise identification of closely related species Commiphora wightii and C. myrrha, which may ensure the quality, safety, and efficacy of medicines made from these plants through adulterous mixing of these plants. Two species-specific RAPD amplicons wer
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7

Soni, Vineet, and P. L. Swarnkar. "Drought Induced Biochemical Changes in Commiphora wightii." International Journal of Life- Sciences Scientific Research 3, no. 4 (2017): 1247–49. http://dx.doi.org/10.21276/ijlssr.2017.3.4.24.

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8

Cenci, Elio, Federica Messina, Elisabetta Rossi, Francesco Epifano, and Maria Carla Marcotullio. "Antiviral Furanosesquiterpenes from Commiphora erythraea." Natural Product Communications 7, no. 2 (2012): 1934578X1200700. http://dx.doi.org/10.1177/1934578x1200700201.

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The crude methanolic extract obtained from C. erythraea resin was chromatographed on silica gel with solvent of increasing polarity. The extract and fractions were evaluated for cytotoxicity and antiviral activity [parainfluenza type 3 virus (PIV3)] by plaque forming units (PFU) reduction assay using HEp-2 cells (human larynx epidermoid carcinoma cell line). From the active fraction, five compounds were isolated and tested. Only two of these showed anti-PIV3 activity with a selectivity index (SI) of 66.6 and 17.5, respectively. Both the compounds are furanosesquiterpenoids.
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9

Jaiswal, Sakshi, JyotiKiran Bara, Ritu Soni, and Dr Parul Saksena. "Medical uses of Commiphora Wightii." IOSR Journal of Nursing and Health Science 05, no. 05 (2016): 76–81. http://dx.doi.org/10.9790/1959-0505017681.

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10

Dong, Lu, Qi Luo, Li-Zhi Cheng, Yong-Ming Yan, Yong-Xian Cheng, and Shu-Mei Wang. "New terpenoids from Resina Commiphora." Fitoterapia 117 (March 2017): 147–53. http://dx.doi.org/10.1016/j.fitote.2017.01.013.

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11

Maradufu, Asafu, and J. David Warthen. "Furanosesquiterpenoids from Commiphora myrrh oil." Plant Science 57, no. 2 (1988): 181–84. http://dx.doi.org/10.1016/0168-9452(88)90085-4.

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12

Abbas, Rasha Khalid, Amina A. M. Al-Mushhin, Fatima S. Elsharbasy, and Kother Osman Ashiry. "Nutritive Value, Polyphenol Constituents and Prevention of Pathogenic Microorganism by Different Resin Extract of Commiphora myrrh." Journal of Pure and Applied Microbiology 14, no. 3 (2020): 1871–78. http://dx.doi.org/10.22207/jpam.14.3.26.

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The resin extract of Commiphora myrrh is Widely used in the folk medicine. The studying myrrh resin extract include moisture. minerals such as (Ca, Fe, Mg, Na, Cu and Zn), protein, total fat and crude fiber. In this study used Muffle furnace, Kjeldahl methods Soxlet and atomic absorption. HPLC using to evaluating Polyphenol constituents of myrrh different resin extract (ethanol, ethyl acetate, petroleum ether and chloroform) as Conc. (µg / g) and in all extract (ethanol, ethyl acetate and petroleum ether and chloroform) it contained Chlorogenic acid, gallic acid Catechin, Coffeic acid, caffein
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13

Swanepoel, W. "BURSERACEAE." Bothalia 37, no. 1 (2007): 40–48. http://dx.doi.org/10.4102/abc.v37i1.299.

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14

Bhat, Shabir Ahmad, and Shameem Ahmad Rather. "Medicinal benefits and scientific justification of Commiphora mukul (Muqil): A review." Journal of Drug Delivery and Therapeutics 11, no. 1-s (2021): 170–72. http://dx.doi.org/10.22270/jddt.v11i1-s.4550.

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Commiphora mukul (Muqil or Guggul), oleo-gum, has been in use for thousands of years as a medicine in Unani and Ayurvedic medicinal systems. It was primarily used for swellings, inflammation, piles, arthritis and urinary disorders. Among its various types Muqil-I-Arzaq, a gum, having reddish hue is considered to be the best form of Muqil for medicinal purposes. It has been revealed to inhibit the nuclear factor-kb, a regulator of inflammatory response, and act as a potent antagonist to the receptors of androgens, mineralocorticoides, and glucocorticoides. Muqil is a versatile herb with diverse
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15

Mahr, Dan. "Commiphora: An Introduction to the Genus." Cactus and Succulent Journal 84, no. 3 (2012): 140–54. http://dx.doi.org/10.2985/0007-9367-84.3.140.

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16

Tariq, M., A. M. Ageel, M. A. Al-Yahya, J. S. Mossa, M. S. Al-Said, and N. S. Parmar. "Anti-inflammatory activity of Commiphora molmol." Agents and Actions 17, no. 3-4 (1986): 381–82. http://dx.doi.org/10.1007/bf01982655.

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17

Dekebo, Aman, Ermias Dagne, Lars K. Hansen, Odd R. Gautun, and Arne J. Aasen. "Two octanordammarane triterpenes from Commiphora kua." Phytochemistry 59, no. 4 (2002): 399–403. http://dx.doi.org/10.1016/s0031-9422(01)00413-7.

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18

Marcotullio, Maria Carla, Ornelio Rosati, and Daniela Lanari. "Phytochemistry of Commiphora erythraea: A Review." Natural Product Communications 13, no. 9 (2018): 1934578X1801300. http://dx.doi.org/10.1177/1934578x1801300925.

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Commiphora erythraea (Burseraceae) resin derives from the bark injury of the plant, a small tree native to the Arabian Peninsula. The resin is commonly known as myrrh and it is traditionally used to protect livestock from ticks and to treat diseases related to inflammation. The resin is constituted by a volatile and a non-volatile fraction. The volatile fraction is a source of furanosesquiterpenoids among which furanodienone showed to be the most promising pharmacological active compound. The composition and pharmacological activities of the extracts and the isolated compounds have been review
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19

Siddiqui, MZ, and PM Mazumder. "Comparative study of hypolipidemic profile of resinoids of Commiphora mukul/Commiphora wightii from different geographical locations." Indian Journal of Pharmaceutical Sciences 74, no. 5 (2012): 422. http://dx.doi.org/10.4103/0250-474x.108417.

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20

Hu, Bin-Yuan, Shao-Xiang Wang, Yong-Ming Yan, Jia-Wang Liu, Da-Peng Qin, and Yong-Xian Cheng. "Spiromyrrhenes A–D: unprecedented diterpene–sesquiterpene heterodimers as intermolecular [4 + 2] cycloaddition products from Resina Commiphora that inhibit tumor stemness in esophageal cancer." Organic Chemistry Frontiers 7, no. 18 (2020): 2710–18. http://dx.doi.org/10.1039/d0qo00656d.

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21

Dong, Lu, Da-Peng Qin, Qian-Qian Di, et al. "Commiphorines A and B, unprecedented sesquiterpenoid dimers from Resina Commiphora with striking activities on anti-inflammation and lipogenesis inhibition." Organic Chemistry Frontiers 6, no. 23 (2019): 3825–33. http://dx.doi.org/10.1039/c9qo01046g.

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22

Arora, Suraj, Shahabe Abullais Saquib, Youssef A. Algarni, et al. "Synergistic Effect of Plant Extracts on Endodontic Pathogens Isolated from Teeth with Root Canal Treatment Failure: An In Vitro Study." Antibiotics 10, no. 5 (2021): 552. http://dx.doi.org/10.3390/antibiotics10050552.

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Background and objectives: This study aimed to evaluate the synergistic antimicrobial activity of extracts obtained from Salvadora persica (Miswak), Commiphora molmol (myrrh) and Azadirachta indica (neem) in combination with commercially available antimicrobial agents: penicillin, tetracycline, ofloxacin and fluconazole on endodontic pathogens such as Enterococcus faecalis, Streptococcus mitis,Actinomyces naeslundii and Candida albicans. Materials and Methods: Microbiological samples from the root canals of the teeth undergoing retreatment were taken using sterile paper points kept at full len
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23

Rzedowski, J., and R. Palacios‐Chávez. "LA PRESENCIA DE COMMIPHORA (BURSERACEAE) EN MÉXICO." TAXON 34, no. 2 (1985): 207–10. http://dx.doi.org/10.2307/1221779.

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24

Zhu, Chuan-Zhi, Bin-Yuan Hu, Jia-Wang Liu, et al. "Anti-Mycobacterium tuberculosis Terpenoids from Resina Commiphora." Molecules 24, no. 8 (2019): 1475. http://dx.doi.org/10.3390/molecules24081475.

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Four new compounds including two new sesquiterpenoid dimers, commiphoroids E (1) and F (2), a new triterpenoid (3), and a new sesquiterpenoid (4), along with three known terpenoids (5−7) were isolated from Resina Commiphora, whose structures were identified by NMR spectra, HRESIMS, and X-ray diffraction analysis. Compounds 1 and 2 both bear an O-bridge ring and feature a plausible [4 + 2] Diels–Alder cycloaddition reaction. Antimycobacterial activities show that all the tested compounds (200 μM) could inhibit the growth of both sensitive and clinically multi-drug resistant (MDR) isolated strai
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25

Mishra, Dhruv Kumar, and Devendra Kumar. "Clonal Propagation in Commiphora Wightii (Arnott.) Bhandari." Journal of Forest and Environmental Science 30, no. 2 (2014): 218–25. http://dx.doi.org/10.7747/jfs.2014.30.2.218.

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26

El-Gamal, Ali A., Shaza M. Al-Massarani, Wael M. Abdel-Mageed, et al. "Prenylated flavonoids from Commiphora opobalsamum stem bark." Phytochemistry 141 (September 2017): 80–85. http://dx.doi.org/10.1016/j.phytochem.2017.05.014.

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27

Zhu, Nanqun, Mohamed M. Rafi, Robert S. DiPaola, et al. "Bioactive constituents from gum guggul (Commiphora wightii)." Phytochemistry 56, no. 7 (2001): 723–27. http://dx.doi.org/10.1016/s0031-9422(00)00485-4.

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28

Santoro, Stefano, Stefano Superchi, Federica Messina, et al. "Agarsenone, a Cadinane Sesquiterpenoid from Commiphora erythraea." Journal of Natural Products 76, no. 7 (2013): 1254–59. http://dx.doi.org/10.1021/np400114b.

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29

Manguro, Lawrence Onyango Arot, Sylvia Awino Opiyo, Eberhardt Herdtweck, and Peter Lemmen. "Triterpenes of Commiphora holtziana oleo-gum resin." Canadian Journal of Chemistry 87, no. 8 (2009): 1173–79. http://dx.doi.org/10.1139/v09-078.

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Chemical analysis of the acetone extract of Commiphora holtziana gum resin has led to the isolation of triterpenes characterized as methyl 3-oxo-1α,19α,28-trihydroxyurs-12-en-24-oate (1), methyl 3β-acetyl-2α,11α,19α,28-tetrahydroxyurs-12-en-24-oate (2), methyl 3β,11α-diacetyl-1α,2α,28-trihydroxyurs-12-ene-24-oate (3), and 3β,28-diacetyl-1α,2α,25-trihydroxydammar-23-ene (4). The known compounds isolated from the same extract included cabraleadiol monoacetate (5), mansumbinol (6), 3β-acetylamyrin (7), 3α-acetylboswellic acid (8), 2-methoxy-8,12-epoxygermacra-1(10),7,11-trien-6-one (9), 2-methoxy
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30

Sosa, S., A. Tubaro, R. Della Loggia, and E. Bombardelli. "Anti-Inflammatory Activity of Commiphora Mukul Extracts." Pharmacological Research 27 (May 1993): 89–90. http://dx.doi.org/10.1006/phrs.1993.1079.

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31

Mercader, Julio, Siobhán Clarke, Mariam Bundala, et al. "Soil and plant phytoliths from the Acacia-Commiphora mosaics at Oldupai Gorge (Tanzania)." PeerJ 7 (December 11, 2019): e8211. http://dx.doi.org/10.7717/peerj.8211.

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This article studies soil and plant phytoliths from the Eastern Serengeti Plains, specifically the Acacia-Commiphora mosaics from Oldupai Gorge, Tanzania, as present-day analogue for the environment that was contemporaneous with the emergence of the genus Homo. We investigate whether phytolith assemblages from recent soil surfaces reflect plant community structure and composition with fidelity. The materials included 35 topsoil samples and 29 plant species (20 genera, 15 families). Phytoliths were extracted from both soil and botanical samples. Quantification aimed at discovering relationships
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32

Shaik, Janbee, Vishakha K, and Ramyasree D. "Evaluation of antibacterial activity of Commiphora myrrha against antibiotic resistant clinical pathogens." Indian Journal of Pharmaceutical and Biological Research 3, no. 03 (2015): 07–11. http://dx.doi.org/10.30750/ijpbr.3.3.2.

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There are many plants used by tribunal people as an anti bacterial, among them myrrh is the one which is commonly used. Myrrh is an oleo gum resin obtained from the plant Commiphora myrrha belongs to the family Burceraceae. It can adhere to intestines because of its resinous nature and it reduces the acidity in small intestines. Generally, the resin is collected from bark and stem of the plant by the process incision. In present study ethyl acetate extract of Commiphora myrrha was used for the evaluation of Anti bacterial activity against three Gram negative organisms and two Gram positive org
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33

Marcotullio, Maria Carla, Claudio Santi, Gildas Norbert Oball-Mond Mwankie, and Massimo Curini. "Chemical Composition of the Essential Oil of Commiphora erythraea." Natural Product Communications 4, no. 12 (2009): 1934578X0900401. http://dx.doi.org/10.1177/1934578x0900401227.

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The essential oil composition of Commiphora erythraea (Ehrenb) Engl. is reported for the first time. The oil is rich in sesquiterpenes, particularly furanosesquiterpenes (50.3%). GC-MS analysis of the oil permitted differentiation between C. erythraea and C. kataf, two often confused species.
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34

Lee, Donghun, Mi-Kyoung Ju, and Hocheol Kim. "Commiphora Extract Mixture Ameliorates Monosodium Iodoacetate-Induced Osteoarthritis." Nutrients 12, no. 5 (2020): 1477. http://dx.doi.org/10.3390/nu12051477.

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Osteoarthritis (OA) is a chronic inflammatory joint disease that affects millions of elderly people around the world. The conventional treatments for OA consisting of nonsteroidal anti-inflammatory drugs and steroid have negative health consequences, such as gastrointestinal, renal, and cardiac diseases. This study has evaluated the Commiphora extract mixture (HT083) on OA progression as an alternative treatment in animal models. The root of P. lactiflora and the gum resin of C. myrrha have been in use as traditional medicines against many health problems including bone disorders since ancient
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35

Abubakar, Abdulmumin, Zainab Mohammed, Abdulrahman Adamu, et al. "DNA and HPLC Fingerprint of Commiphora africana (Burseraceae)." Tropical Journal of Natural Product Research 3, no. 2 (2019): 37–41. http://dx.doi.org/10.26538/tjnpr/v3i2.3.

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36

Dekebo, Aman, Ermias Dagne, Lars K. Hansen, Odd R. Gautun, and Arne J. Aasen. "Crystal structures of two furanosesquiterpenes from Commiphora sphaerocarpa." Tetrahedron Letters 41, no. 50 (2000): 9875–78. http://dx.doi.org/10.1016/s0040-4039(00)01752-4.

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37

Bouslama, Lamjed, Bochra Kouidhi, Yasir Mohammed Alqurashi, Kamel Chaieb, and Adele Papetti. "Virucidal Effect of Guggulsterone Isolated from Commiphora gileadensis." Planta Medica 85, no. 16 (2019): 1225–32. http://dx.doi.org/10.1055/a-1014-3303.

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Abstract Commiphora gileadensis, locally known as becham, is a plant used in traditional Arabian medicine for treating headache, constipation, stomach, joint pain, and inflammatory disorders. Several studies have reported its antibacterial properties; however, no study has demonstrated its antiviral activity. This study aimed to evaluate the antiviral activity of C. gileadensis as well as to isolate its active compound and investigate its mode of action. This activity was evaluated using 4 viruses, herpes simplex virus type 2 (HSV-2), respiratory syncytial virus type B (RSV-B), coxsackie virus
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38

Swanepoel, Wessel. "Commiphora namibensis (Burseraceae), a new species from Angola." Phytotaxa 178, no. 3 (2014): 211. http://dx.doi.org/10.11646/phytotaxa.178.3.7.

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Commiphora namibensis Swanepoel, described here as a new species, is known only from the Kaokoveld Centre of Endemism, southwestern Angola. It appears to be closely related to C. virgata Engl. Diagnostic morphological characters of C. namibensis include the mostly spinescent lateral branches and branchlets, trifoliolate leaves, rarely with a few simple ones also present, the leaflets which are shiny adaxially and a laterally slightly compressed putamen with a yellow pseudo-aril. Illustrations of the plant and a distribution map are provided. Mainly confined to near the coast, the new species i
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39

Swanepoel, Wessel. "Commiphora benguelensis (Burseraceae), a new species from Angola." Phytotaxa 217, no. 2 (2015): 191. http://dx.doi.org/10.11646/phytotaxa.217.2.9.

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Commiphora benguelensis Swanepoel, described here as a new species, is known only from the Kaokoveld Centre of Endemism, southwestern Angola. It appears to be closely related to C. africana. Diagnostic morphological characters of C. benguelensis include the white, glutinous exudate, smooth bark and hairy, trifoliolate leaves. Illustrations of the plant and a distribution map are provided. Mainly confined to near the coast, the new species is widespread but uncommon between Namibe and Santa Maria.
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40

Thulin, Mats. "Ten new species of Commiphora (Burseraceae) from Somalia." Nordic Journal of Botany 20, no. 4 (2000): 395–411. http://dx.doi.org/10.1111/j.1756-1051.2000.tb01579.x.

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41

Kim, Dong-Goo, Gi-Sang Bae, Sun Bok Choi, et al. "Protective effects of Commiphora myrrha on acute pancreatitis." Korea Journal of Herbology 29, no. 6 (2014): 15–20. http://dx.doi.org/10.6116/kjh.2014.29.6.15.

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42

Manguro, Lawrence Onyango Arot, Ivar Ugi, and Peter Lemmen. "Dammarane Triterpenes of Commiphora confusa Resin." Chemical and Pharmaceutical Bulletin 51, no. 5 (2003): 483–86. http://dx.doi.org/10.1248/cpb.51.483.

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43

Provan, Gordon J., Alexander I. Gray, and Peter G. Waterman. "Mansumbinane derivatives from stem bark of Commiphora kua." Phytochemistry 31, no. 6 (1992): 2065–68. http://dx.doi.org/10.1016/0031-9422(92)80364-k.

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44

Al-Madi, Ebtissam M., Amal A. Almohaimede, Mohammad I. Al-Obaida, and Amani S. Awaad. "Comparison of the Antibacterial Efficacy of Commiphora molmol and Sodium Hypochlorite as Root Canal Irrigants against Enterococcus faecalis and Fusobacterium nucleatum." Evidence-Based Complementary and Alternative Medicine 2019 (July 4, 2019): 1–6. http://dx.doi.org/10.1155/2019/6916795.

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Objective. The investigation aims to compare antimicrobial efficacy of the extract of Commiphora molmol, against Enterococcus faecalis and Fusobacterium nucleatum, with sodium hypochlorite (NaOCl). Design. The dehydrated oleo-gum resin of Commiphora molmol was extracted by using 70% ethanol and was suspended in 99.8% dimethyl sulfoxide (DMSO) as a dissolving agent in a 1:2 volume to produce an aqueous solution at room temperature. Agar-well diffusion and broth microdilution methods assay were utilized to determine both the antimicrobial activity and minimum inhibitory concentration, of alcohol
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45

Ramos-Ordoñez, María F., M. del Coro Arizmendi, Martha Martínez, and Judith Márquez-Guzmán. "The pseudaril of Bursera and Commiphora, a foretold homology?" Revista Mexicana de Biodiversidad 84, no. 2 (2013): 509–20. http://dx.doi.org/10.7550/rmb.32114.

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46

Johnson, Ekarika, Manash Chuodhury, Eseyin Olorunfemi Abraham, and Udobre Anefiok Sunday. "Pharmacological Studies of the Bark of Commiphora africana (Burseraceae)." Journal of Pharmacology and Toxicology 7, no. 1 (2011): 52–57. http://dx.doi.org/10.3923/jpt.2012.52.57.

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47

Houston, Dan, and Joe Stead. "Propagating Commiphora planifrons: An Exercise in Patience and Experimentation." Cactus and Succulent Journal 83, no. 5 (2011): 216–23. http://dx.doi.org/10.2985/0007-9367-83.5.216.

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48

Ahmed, Ibtisam, Suad Gadir, Elsheikh Elgilany, and Taguldien Abdallah. "Commiphora africana Resin Phytochemical Analysis & Some Biological Aspects." European Journal of Medicinal Plants 13, no. 3 (2016): 1–11. http://dx.doi.org/10.9734/ejmp/2016/22531.

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49

Hu, Bin-Yuan, Da-Peng Qin, Shao-Xiang Wang, Jing-Jing Qi, and Yong-Xian Cheng. "Novel Terpenoids with Potent Cytotoxic Activities from Resina Commiphora." Molecules 23, no. 12 (2018): 3239. http://dx.doi.org/10.3390/molecules23123239.

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A novel sesquiterpene dimer, spirocommiphorfuran A (1); two new cadinane sesquiterpenoids, commiphorenes A (2) and B (3); along with three known terpenoids (4–6), were isolated from Resina Commiphora. The structures of these new compounds were characterized by NMR, HRESIMS, quantum chemical computation, and X-ray diffraction analysis. Compound 1 features a 7-oxabicyclo[2.2.1]heptane-2-ene core, representing the first example of germacrane-type sesquiterpene dimer fused via a spiro ring system. Compound 2 is a novel sesquiterpene with a completely new carbon skeleton, which is characteristic of
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Habtemariam, Solomon. "Cytotoxic and cytostatic activity of erlangerins from Commiphora erlangeriana." Toxicon 41, no. 6 (2003): 723–27. http://dx.doi.org/10.1016/s0041-0101(03)00048-5.

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