The effects of vegetative and generative shoots of Ajuga Chamaecistus, A. austro-iranica against some bactria and fungi strains
Subject Areas :
microbiology
Farkhondeh Rezanejad
1
,
Sedigheh Mehrabian
2
1 - Professor, biology Group, Shahid Bahounar University, Kerman, Iran
2 - Professor, biology Group, Kharazmi University,Tehran, Iran.
Received: 2020-07-06
Accepted : 2020-10-07
Published : 2020-09-22
Keywords:
gram positive,
anti microbial effects,
Fungi and bacteria,
Ajuga,
Vegetative and generative structures,
gram negative,
Abstract :
Objectives: Study of antimicrobial effects of aqueous and methanolic extracts of vegetative and reproductive structures of A. Chamaecistus and A. austro-iranica on several fungi and bacteria Materials and Methods: Aquatic and methanolic extracts prepared from Ajuga Chamaecistus, A. austro-iranica were tested for antibacterial activity against gram positive (Satphyloccocus aureous and Streptococus pyogenes) and gram negative (Pseudomonas aeroginosa and Proteus vulgaris) bacteria and Aspergillus niger and fusarium solani. The vegetative and generative shoots of plants were powdered, sterilized, and extracted at 4°C with methanol and water. The concentrations of 50, 100 and 200 mgml-1 of methanolic and aquatic extracts were used to detect the minimum inhibitory concentration (MIC). All experiments were tested three times. The antibacterial effects were evaluated using the cup-plate and antifugal activity using cup-plate and pour plate Results: The antibacterial effect of aqueous extracts showed that only the leaf extract (vegetative extract) of A. chamaecistus is effective on S. aureus showing that in gram-negative bacteria, the presence of a lipopolysaccharide wall causes greater resistance. Methanolic extracts of both species were more active than aqueous extracts and had antimicrobial effects on all tested bacteria as well as A. niger. In both species, the extracts of the generative parts showed a stronger antifungal effect. In different species of this genus, the presence of phenolic compounds, tannins and terpenoids that have antimicrobial properties confirms the antimicrobial properties of this species. However, the amount of their effect depends on plant and microbe species, the tested parts (plant organs), the extracts concentration, the sampling season, the sample age and soil type.
References:
Camps F & Coll J. Insect allele chemicals from Ajuga plants. Phytochemistry. 1993; 32: 1361-1370.
Masoudi S. Volatile constituents from different parts of three Lamiacea herbs from Iran. Iranian journal of pharmaceutical research: IJPR. 2018; 17(1): 365.
Rechinger KH. Ajuga. In: Rechinger, KH (Ed.), Flora Iranica. Akademische Drucks Verlagsantalt, Graz; 1982, Vol. 150: 10–23.
Toiu A, Mocan A, Vlase L, Pârvu AE, Vodnar DC, Gheldiu AM, Moldovan C & Oniga I. Comparative phytochemical profile, antioxidant, antimicrobial and in vivo anti-inflammatory activity of different extracts of traditionally used Romanian Ajuga genevensis L. and A. reptans L.(Lamiaceae). Molecules. 2019; 24(8): 1597.
Takasaki M, Tokuda H, Nishino H & Konoshima T. Cancer chemopreventive agents (antitumor-promoters) from Ajuga decumbens. Journal of natural products. 1999; 62(7): 972-975.
Adam K, Sivropoulou A, Kokkini S, Lanaras T & Arsenakis M. Antifungal activities of Origanum vulgare subsp. hirtum, Mentha spicata, Lavandula angustifolia, and Salvia fruticosa essential oils against human pathogenic fungi. Journal of Agricultural and Food Chemistry. 1998; 46(5): 1739-1745.
Aguiar GP, Lima KA, Severiano ME, Groppo M & Ambrósio SR. 2018. Antifungal activity of the essential oils of Plectranthus neochilus (Lamiaceae) and Tagetes erecta (Asteraceae) cultivated in brazil. Int J Complement Alt Med. 2018; 11(1): 00343.
Bremner PD, Simmonds MS, Blaney, WM & Veitch NC. Neo-clerodane diterpenoid insect antifeedants from Ajuga reptans cv catlins giant. Phytochemistry. 1998; 47(7): 1227-1232.
Callebaut A, Terahara N, De Haan, M & Decleire M. Stability of anthocyanin composition in Ajuga reptans callus and cell suspension cultures. Plant cell, tissue and organ culture. 1997; 50(3): 195.
Encarnacion Dimayuga R, Virgen M & Ochoa N. Antimicrobial activity of
medicinal plants from Baja California Sur (Mexico). Pharmaceutical biology. 1998; 36(1): 33-43.
Ganaie HA, Ali MN, Ganai BA, Meraj M & Ahmad M. Antibacterial activity of
14, 15-dihydroajugapitin and 8-o-acetylharpagide isolated from Ajuga bracteosa
Wall ex. Benth against human pathogenic bacteria. Microbial pathogenesis. 2017; 103: 114-118.
Manena T & Muyima NYO. Comparative evaluation of the antimicrobial activities of essential oils of Artemisis afra, Pteronia and Rosmarinus officinalis on selected bacteria and yeast strains. Letters in Applied Microbioligy. 1999; 28: 291- 296.
Terahara N, Callebaut A, Ohba R, Nagata T, Ohnishi-Kameyama M & Suzuki M. Triacylated anthocyanins from Ajugareptans flowers and cell cultures. Phytochemistry. 1996; 42(1):
199-203.
Tomás J, Camps F, Claveria E, Coll J, Melé E & Messeguer J. Composition and location of phytoecdysteroids in Ajuga reptans in vivo and in vitro cultures. Phytochemistry. 1992; 31(5): 1585-1591.
Yagi T, Morisaki M, Kushiro T, Yoshida H & Fujimoto Y. Biosynthesis of 24β-alkyl-Δ25-sterols in hairy roots of Ajuga reptans var. atropurpurea. Phytochemistry. 1996; 41(4): 1057-1064.
Yang D, Michel L, Chaumont JP & et al. Use of caryophyllene oxide as an antifungal agent in an in vitro experimental model of unychomycosis. Mycopathologia. 1999; 148(1):79–82.
Zengin H & Baysal AH. Antibacterial and antioxidant activity of essential oil terpenes against pathogenic and spoilage-forming bacteria and cell structure-activity relationships evaluated by SEM microscopy. Molecules. 2014; 19(11): 17773-17798.
Sahakyan N, Petrosyan M & Trchounian A. Comparative analysis of chemical composition and biological activities of Ajuga genevensis L. in vitro culture and intact plants. Int J Biol Biomol Agric Food Biotechnol Eng. 2016; 10: 322-326.
Madhavi DL, Juthangkoon S, Lewen K, Berber-Jimenez MD & Smith MAL. Characterization of anthocyanins from Ajuga pyramidalis metallica crispa cell cultures. Journal of Agricultural and Food Chemistry. 1996; 44(4): 1170-1176.
Mohammadhosseini M, Pazoki A, Zamani HA & Akhlaghi H. Chemical composition of the essential oil from aerial parts of Ajuga chamaecistus Ging. subsp. scopria in Brackish regions of Iran. Journal of Essential Oil Bearing Plants. 2011; 14(1): 101-105.
Madhavi DL, Smith MAL, Linas AC & Mitiku G. Accumulation of ferulic acid in cell cultures of Ajuga pyramidalis metallica crispa. Journal of Agricultural and Food Chemistry. 1997; 45(4): 1506-1508.
Movahhedin N, Zengin G, Bahadori MB, Sarikurkcu C, Bahadori S & Dinparast L. Ajuga chamaecistus subsp. scoparia (Boiss.) Rech. f.: A new source of phytochemicals for antidiabetic, skin-care, and neuroprotective uses. Industrial Crops and Products. 2016; 94: 89-96.
Tafesse TB, Hymete A, Mekonnen Y & Tadesse M. Antidiabetic activity and phytochemical screening of extracts of the leaves of Ajuga remota Benth on
alloxan-induced diabetic mice. BMC complementary and alternative medicine. 2017; 17(1): 1-9.
Bhalodia NR, Shukla VJ. Antibacterial and antifungal activities from leaf extracts of Cassia fistula: An ethnomedicinal plant. Journal of advanced pharmaceutical technology and research. 2011; 2(2): 104-109.
Abi-Ayad M, Abi-Ayad FZ, Lazzouni HA, Rebiahi SA & Ziani_Cherif C. Chemical composition and antifungal activity of Aleppo pine essential oil. Journal of Medicinal Plants Research. 2011; 5(22): 5433-5436.
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