Current Knowledge of the Genus Satureja: A Comprehensive Review of Its Traditional Use, Phytochemistry, Pharmacological Activity and Non-Medical Applications
Abstract
1. Introduction
2. Ethnobotanical Uses
3. Chemical Composition of Satureja Species
3.1. Essential Oil
3.2. Flavonoids
| Compound Name | Plant Species | Reference |
| Flavanones | ||
| Pinocembrin (41) | S. horvatii, S. subspicata | [82] |
| Naringenin (42) | S. hortensis, S. khuzistanica, S. cuneifolia, S. kitaibelii, S. boissieri, S. horvatii, S. subspicata, S. macrantha, S. aintabensis, S. spicigera, S. pilosa, S. montana, S. bachtiarica | [33,44,71,77,78,79,80,82,83,84,85,86,87] |
| Isosakuranetin (43) | S. aintabensis, S. spicigera, S. pilosa | [79,85] |
| Hesperetin (44) | S. boissieri | [84] |
| Genkwanin (45) | S. kitaibelii, S. bachtiarica | [77,87] |
| Eriodictyol (46) | S. subspicata, S. cuneifolia. S. kitaibelii, S. bachtiarica | [33,71,77,87] |
| 5,7,3′,5′-Tetrahydroxyflavanone (47) | S. khuzistanica | [80] |
| Naringin (48) | S. cuneifolia, S. hortensis, S. macrantha; S. aintabensis, S. spicigera, S. pilosa | [33,44,78,79,85,88] |
| Eriocitrin (49) | S. cuneifolia | [33] |
| Isosakuranetin 7-O-rutinoside (50) | S. bachtiarica | [87] |
| Hesperidin (51) | S. cuneifolia, S. boissieri, S. macrantha, S. aintabensis, S. spicigera, S. pilosa, S. bachtiarica | [33,44,79,84,85,87] |
| Flavanonols | ||
| Aromadendrin (52) | S. khuzistanica, S. aintabensis, S. spicigera, S. pilosa, S. bachtiarica | [79,80,85,87] |
| Taxifolin (53) | S. khuzistanica, S. aintabensis, S. spicigera, S. pilosa | [79,80,85] |
| Dihydrochalcon | ||
| Phlorizin (54) | S. hortensis | [78] |
| Cilicione-a (55) | S. hortensis | [41] |
| Flavones | ||
| Chrysin (56) | S. horvatii, S. subspicata, S. pilosa | [79,82] |
| Apigenin (57) | S. subspicata, S. kitaibelii, S. boissieri, S. hortensis, S. bachtiarica, S. sahendica, S. horvatii, S. subspicata, S. khuzistanica, S. aintabensis, S. spicigera, S. hasturkii, S. pilosa | [36,71,77,78,79,80,82,84,85,87,88,89,90,91] |
| Luteolin (58) | S. subspicata, S. kitaibelii, S. cuneifolia, S. hortensis, S. boissieri, S. bachtiarica, S. sahendica, S. macrantha, S. aintabensis, S. spicigera, S. hasturkii, S. pilosa | [33,44,71,77,78,79,84,85,87,88,89,90,91] |
| Isoscutellarein (59) | S. montana | [92] |
| Acacetin (60) | S. khuzistanica, S. aintabensis, S. spicigera | [80,85] |
| Diosmetin (61) | S. khuzistanica, S. subspicata | [71,80] |
| Hispidulin (62) | S. aintabensis, S. spicigera, S. pilosa | [79,85] |
| Nepetin (63) | S. aintabensis | [85] |
| Eupatilin (64) | S. bachtiarica | [87] |
| Hymenoxin (65) | S. bachtiarica | [87] |
| Cirsimaritin (66) | S. khuzistanica | [80] |
| 7-Methylluteolin (67) | S. khuzistanica | [80] |
| Cirsilineol (68) | S. khuzistanica | [80] |
| 6-Hydroxyluteolin 7,3′-dimethyl ether (69) | S. khuzistanica, S. hortensis | [36,80] |
| Xanthomicrol (70) | S. khuzistanica | [80] |
| 5,6-Dihydroxy-7,3′,4′-trimethoxyflavone (71) | S. hortensis | [41] |
| Saturejin (72) | S. khuzistanica | [80] |
| Apigenin 7-O-glucoside (73) | S. hortensis, S. pilosa, S. coerulea, S. aintabensis, S. spicigera, S. bachtiarica | [31,78,79,85,87] |
| Apigenin 7-O-rutinoside (74) | S. kitaibelii, S. cuneifolia, S. pilosa, S. bachtiarica | [33,76,79,87] |
| Apigenin glycoside * | S. hortensis | [88] |
| Apigenin glucuronide * | S. cuneifolia | [33] |
| Apigenin deoxyhexosylhexoside * | S. kitaibelii | [77] |
| Apigenin dihexuronide * | S. kitaibelii | [77] |
| Apigenin C-dihexoside * | S. montana | [93] |
| Luteolin 7-O-glucuronide (75) | S. kitaibelii, S. biflora, S. bachtiarica | [76,81,87] |
| Luteolin 7-O-rutinoside (76) | S. kitaibelii, S. pilosa, S. bachtiarica, S. aintabensis, S. spicigera | [76,77,79,85,87] |
| Luteolin 7-O-diglucuronide (77) | S. kitaibelii | [77] |
| Vitexin (78) | S. hortensis | [78] |
| Diosmin (79) | S. kitaibelii | [76,77] |
| Luteolin 7-O-glucoside (80) | S. aintabensis, S. spicigera, S. hasturkii, S. pilosa, S. coerulea | [31,79,85,91] |
| Luteolin 7-O-xyloside (81) | S. bachtiarica | [87] |
| Luteolin C-dihexoside * | S. montana | [93] |
| Luteolin caffeoyl-dihexuronide * | S. kitaibelii | [77] |
| Luteolin p-coumaroyl-dihexuronid * | S. kitaibelii | [77] |
| Luteolin sinapoyl-dihexuronide * | S. kitaibelii | [77] |
| Luteolin glucoside * | S. cuneifolia | [33] |
| Luteolin glucuronide * | S. cuneifolia, S. montana | [33,93] |
| Luteolin O-diglucuronide * | S. montana | [93] |
| Luteolin rutinoside * | S. cuneifolia | [33] |
| Luteolin-glycoside * | S. hortensis | [88] |
| Apigenin 7-O-β-d-glucoside 4′-O-methyl ether (82) | S. bachtiarica | [87] |
| Methylapigenin deoxyhexosyl-hexoside * | S. kitaibelii | [77] |
| Methylapigenin hexoside * | S. kitaibelii | [77] |
| Methylapigenin rutinoside * | S. kitaibelii | [76] |
| Orientin (83) | S. aintabensis, S. spicigera, S. pilosa | [79,85] |
| Vicenin 2 (84) | S. bachtiarica | [87] |
| 2′’-Caffeoylluteolin 7-O-β-d-glucuronide (85) | S. biflora | [81] |
| Flavonols | ||
| Kaempferol (86) | S. hortensis, S. subspicata, S. boissieri | [71,83,84,88] |
| Quercetin (87) | S. subspicata, S. montana, S. hortensis, S. cuneifolia, S. bachtiarica, S. sahendica, S. horvatii, S. macrantha, S. aintabensis, S. spicigera, S. pilosa, S. coerulea | [8,31,33,44,78,79,82,83,85,86,88,89,94] |
| Myricetin (88) | S. subspicata | [71] |
| Quercetin 3′,4′-dimethyl ether (89) | S. bachtiarica | [87] |
| Astragalin (90) | S. hortensis, S. coerulea, S. bachtiarica | [31,78,87] |
| Isoquercitrin (91) | S. kitaibelii, S. hortensis, S. pilosa, S. coerulea, S. bachtiarica | [31,76,77,78,79,87] |
| Quercitrin (92) | S. hortensis | [78] |
| Hyperoside (93) | S. boissieri, S. pilosa | [79,84] |
| Rutin (94) | S. subspicata, S. montana, S. boissieri, S. hortensis, S. bachtiarica, S. sahendica, S. coerulea | [8,31,55,84,88,89,94] |
| Morin (95) | S. hortensis | [83] |
| Penduletin (96) | S. aintabensis, S. spicigera, S. pilosa | [79,85] |
| Quercetin O-glucuronide * | S. montana | [93] |
| Eriodictyol rutinoside * | S. kitaibelii | [76] |
| Hesperidin rutinoside * | S. cuneifolia | [33] |
| Quercetin rutinoside * | S. cuneifolia | [33] |
| Catechins | ||
| (–)-Catechin (97) | S. montana | [55] |
| Epicatechin (98) | S. montana | [86] |
| Epigallocatechin (99) | S. barceloi, S. pilosa | [79,95] |
| Epicatechin 3-O-gallate (100) | S. barceloi | [95] |
| Epigallocatechin 3-O-gallate (101) | S. barceloi, S. pilosa | [79,95] |
| Anthocyanins | ||
| Cyanidin-3-O-glucoside (102) | S. macrantha | [44] |
| Keracyanin chloride (103) | S. macrantha | [44] |
| Peonidin-3-O-glucoside (104) | S. macrantha | [44] |
3.3. Phenolic Acids
3.4. Jasmonates
3.5. Diterpenes, Triterpenes, and Steroids
3.6. Other Compounds
4. Pharmacology
4.1. Antibacterial Activity
4.2. Antifungal Activity
4.3. Antiparasitic, Anthelmintic, and Antiprotozoal Activities
4.4. Antioxidant Activity
4.5. Protection Against Heavy Metal Damage
4.6. Antiglycation Effect
4.7. Antitumor Activity
4.8. Anti-Inflammatory Activity
4.9. Protective Effects on Side Effects of Chemotherapy
4.10. Anti-Diabetic Activity
4.11. Effects on Fatty Liver Syndrome
4.12. Improve Memory Impairment
4.13. Immunostimulatory Activity
4.14. Prebiotic Activity
4.15. Antispasmodic and Antidiarrheal Activities
4.16. Wound Healing Effect
4.17. Other Activities
5. Innovative Applications of Satureja Species
6. Discussion
7. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| Akt1 | RAC (Rho family)-alpha serine/threonine protein kinase |
| Aβ | Amyloid β |
| CMC | carboxymethylcellulose |
| COX-2 | Cyclooxygenase-2 |
| DPPH | (2,2-Diphenyl-1-picrylhydrazyl) |
| EO | essential oil |
| EtOH | ethanol |
| GFAP | Glial fibrillary acidic protein |
| HD | hydrodistillation |
| IL-1β | Interleukin 1 beta |
| IL-6 | Interleukin 6 |
| LPS | lysosomal polysaccharide |
| MBC | minimum bactericidal concentration |
| MeOH | Methanol |
| MIC | minimum inhibitory concentration |
| MSHD | microwave-assisted steam hydrodiffusion |
| MTT | 3-[4,5-Dimethylthiazol-2-yl]-2,5 diphenyl tetrazolium bromide |
| PPAR-γ | Peroxisome proliferator-activated receptor gamma |
| SPME | solid-phase microextraction |
| TNF-α | Tumor necrosis factor-alpha |
| TUNEL | terminal deoxynucleotidyl transferase dUTP nick end labeling |
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| Subject | Sub-Group | No. of Publications * |
|---|---|---|
| Ethnobotany | 4 | |
| Phytochemistry | Essential oils | 55 |
| Flavonoids | 26 | |
| Phenolic acids | 28 | |
| Jasmonates | 4 | |
| Di-, triterpenoids, steroids | 6 | |
| Other compounds | 9 | |
| Pharmacology | Antibacterial activity | 64 |
| Antifungal activity | 14 | |
| Antiparasitic, anthelmintic and antiprotozoal activities | 11 | |
| Antioxidant activity | 54 | |
| Anti-tumor activity | 25 | |
| Anti-inflammatory activity | 5 | |
| Protective effects on chemotherapy side effects | 4 | |
| Anti-diabetic activity | 6 | |
| Improve memory impairment | 5 | |
| Other activities | 14 | |
| Innovative applications | 12 |
| Plant Material | Main Compounds of EO | Comment | Ref. |
|---|---|---|---|
| Dried aerial parts from cultivation in Serbia | carvacrol (5) (46.7%), γ-terpinene (8) (32.5%), α-terpinene (23) (4.22%), p-cymene (6) (3.63%) | [35] | |
| Air-dried aerial parts collected in Iran in early spring | thymol (7) (41.28%), γ-terpinene (8) (37.3%), p-cymene (6) (12.2%), and α-terpinene (23) (3.59%) | [38] | |
| Dried aerial parts at full flowering stage collected in Ardebil province, Iran | γ-terpinene (8) (37.60%), carvacrol (5) (32.07%), p-cymene (6) (13.07%), α-terpinene (23) (4.63%), β-bisabolene (30) (3.09%) | EO yield 1.8% | [23] |
| Dried aerial parts collected at the beginning of the flowering stage in Fars province, Iran | thymol (7) (28.5%), p-cymene (6) (18.9%), γ-terpinene (8) (16.2%), carvacrol (5) (11.0%) | [39] | |
| EO purchased from Oshadhi Ltd. (Cambrigre, UK) | carvacrol (5) (39.84%), γ-terpinene (8) (34.63%), p-cymene (6) (10.72%), α-terpinene (23) (3.51%), and β-caryophyllene (4) (2.40%) | [40] | |
| 20 different accessions originating from Iran, Bulgaria, Germany, Czech, Georgia, Syria, Hungary, Poland, Italy, Greece, and Uzbekistan | γ-terpinene (8) (max. 84.03%), carvacrol (5) (max. 28.07%), α-terpinene (23) (max. 21.4%) and thymol (7) (max. 41.13%) | The EO content ranged between 0.1 and 0.75%. The presence of different chemotypes can be proposed. | [41] |
| EO extracted by SPME, vegetation phases were compared | carvacrol (5) predominated and further main compounds were myrcene (25), p-cymene (6), γ-terpinene (8), and β-caryophyllene (4) in all vegetation phases | The amount of carvacrol (5) ranged from 47% in intensive growth to 87% at the end of flowering. The maximum concentration of γ-terpinene (8) was reached during intensive growth but decreased to 6% at massive flowering and at the end of the flowering stage. | [36] |
| Air-dried above ground parts collected from Kerman province, Iran | carvacrol (5) (50.68%), γ-terpinene (8) (34.44%), α-terpinene (23) (3.72%) | EO yield in the stage of mass flowering was 2.05%. | [42] |
| EO purchased from Bio Salas Farago, Serbia | carvacrol (5) (49.5%), γ-terpinene (8) (29.7%), p-cymene (6) (12.9%), α-terpinene (23) (2.00%) | [43] | |
| Air-dried flowering aerial parts collected in Sülünkaya village, Erzurum Province, Türkiye | thymol (7) (45.1%), γ-terpinene (8) (29.9%), p-cymene (6) (8.2%), α-terpinene (23) (3.3%), and carvacrol (5) (3.2%) | EO yield by hydrodistillation was 0.1% | [44] |
| Plant Material | EO Yield | Main Compounds of EO | Conclusion | Ref. |
| Aerial part of S. montana in the flowering stage of the Kherson region (Ukraine) | n.d. | p-thymol (37) (81.79%), linalool (32) (2.09%) | p-Thymol (37), the isomer of thymol (7) and carvacrol (5) are the dominant compounds | [55] |
| S. montana EO from a commercial source | - | carvacrol (5) (43.9%), thymol (7) (7.6%), thymol methyl ether (39) (4.3%), borneol (17) (3.1%), caryophyllene (4) (3.4%) | - | [59] |
| Leaves of S. montana, Belo Horizonte, Brazil | n.d. | borneol (17) (36.18%), γ-terpinene (8) (12.66%), carvacrol (5) (11.07%) and p-cymene (6) (9.57%) | Borneol (17) as a major compound of S. montata EO is unprecedented. | [56] |
| Fresh flowering aerial parts of S. montana subsp. variegata from cultivation in Northern Italy | 1.1% | carvacrol (5) (22.5%), p-cymene (6) (17.6%), thymol (7) (17.4%), γ-terpinene (8) (9.1%) and carvacrol methyl ether (40) (7.1%) | The main difference between the two subspecies was the carvacrol (5)–thymol (7) ratio, above 300 (subsp. montana) and about 1 (subsp. variegata). | [57] |
| Fresh flowering aerial parts of S. montana subsp. montana from cultivation in Northern Italy | 1.5% | carvacrol (5) (61.9%), p-cymene (6) (9.9%) and γ-terpinene (8) (8.2%) | ||
| Aerial parts of S. montana subsp. montana collected in two population in Italy | 0.9% both population | coast population: α-pinene (21) (26.96%), α-terpineol (22) (15.70%), trans-β-ocimene (38) (11.45%), linalool (32) (7.37%), D-limonene (35) (7.05%); Interland population: thymol (7) (46.10%), γ-terpinene (8) (14.57%), p-cymene (6) (10.43%) | The EO profile of the coast and inland populations is very different. | [34] |
| Commercial sample of S. montana EO from Bosnia and Herzegovina | - | thymol (7) (44.6%), p-cymene (6) (13.4%), carvacrol (5) (6.2%), γ-terpinene (8) (4.7%) | - | [60] |
| Herbs of S. montana in the initial flowering phase of cultivation in Ljubinje Bosnia and Hercegovina | 1.45% | carvacrol (5) (54.9%), γ-terpinene (8) (14.5%), p-cymene (6) (8.8%), β-caryophyllene (4) (3.2%) | [4] | |
| Commercial sample of S. montana EO from Niš, Serbia | n.d. | predominant compounds were carvacrol (5) (24.3%), thymol (7) (15.5%) and p-cymene (6) (12.2%) | [61] | |
| S. montana EO obtained from dried cultivated plant (Ni, Serbia) by steam distillation | n.d. | p-cymene (6) (42.8%), carvacrol (5) (28.11%), and γ-terpinene (8) (14.59%) | [62] | |
| EO from S. montana dried herbs from Bego (B) and Dajti (D) Mountain, Albania | 0.39% and 0.73% | B: thymol (7) (52.8%), and p-cymene (6) (8.9%) D: thymol (7) (28.5%), and p-cymene (6) (11.8%) | Both samples belong to the thymol chemotype. | [63] |
| Compound Name | Plant Species | Reference |
| Benzoic acid derivatives | ||
| 4-Hydroxybenzoic acid (105) | S. horvatii, S. subspicata, S. hortensis, S. montana, S. barceloi | [82,86,88,90,95] |
| Gentisic acid (106) | S. montana | [96] |
| Protocatechuic acid (107) | S. montana | [96] |
| Gallic acid (108) | S. montana | [86] |
| Salicylic acid (109) | S. kitaibelii, S. horvatii, S. subspicata, S. aintabensis, S. spicigera | [76,82,85] |
| Syringic acid (110) | S. montana, S. hortensis, S. bachtiarica, S. sahendica, S. horvatii, S. subspicata, S. macrantha; S. aintabensis, S. spicigera, S. barceloi | [8,44,71,78,82,85,88,89,95,96] |
| Vanillic acid (111) | S. montana, S. hortensis, S. horvatii, S. subspicata, S. macrantha, S. aintabensis, S. spicigera, S. pilosa | [44,79,82,85,86,88,96] |
| Ellagic acid (112) | S. subspicata, S. montana, S. pilosa | [8,71,79] |
| Cinnamic acid derivatives | ||
| Cinnamic acid (113) | S. horvatii, S. subspicata | [82] |
| p-Coumaric acid (114) | S. subspicata, S. montana, S. hortensis, S. kitaibelii, S. boissieri, S. bachtiarica, S. sahendica, S. horvatii, S. hasturkii | [8,71,77,78,82,84,89,91,96] |
| Caffeic acid (115) | S. subspicata, S. montana, S. hortensis, S. kitaibelii, S. bachtiarica, S. sahendica, S. horvatii, S. boissieri, S. macrantha; S. aintabensis, S. spicigera, S. hasturkii. S. pilosa | [8,44,55,71,77,78,79,82,84,85,86,88,89,91,94,96] |
| Ferulic acid (116) | S. subspicata, S. montana, S. hortensis, S. bachtiarica, S. sahendica, S. horvatii, S. macrantha | [44,71,82,88,89,96] |
| Sinapic acid (117) | S. hortensis | [78,88] |
| 5-Hydroxyferulic acid (118) | S. horvatii, S. subspicata | [82] |
| Caffeic acid ethyl ester (119) | S. bachtiarica | [87] |
| (6-O-Caffeoyl)-β-d-glucoside (120) | S. bachtiarica | [87] |
| Chlorogenic acid (121) | S. montana, S. kitaibelii, S. montana, S. hortensis, S. horvatii, S. subspicata, S. macrantha; S. aintabensis, S. spicigera, S. pilosa | [44,55,71,77,78,79,82,85,86,88,90,94] |
| 3,5-Dicaffeoylquinic acid (122) | S. kitaibelii | [77] |
| Cynarin (123) | S. kitaibelii | [77], |
| Salvianolic acid A (124) | S. kitaibelii | [76] |
| Salvianolic acid B (125) | S. cuneifolia, S. montana | [33,93] |
| Salvianolic acid E (126) | S. kitaibelii | [77] |
| Salvianolic acid L (127) | S. kitaibelii | [77] |
| Salvianolic acid K (128) | S. kitaibelii | [77] |
| Salvianolic acid P (129) | S. pilosa | [97] |
| Isosalvianolic acid A (130) | S. cuneifolia | [33] |
| Clinopodic acid I (131) | S. kitaibelii, S. biflora, S. pilosa | [76,77,81,97] |
| Clinopodic acid K (132) | S. kitaibelii, S. biflora | [76,77] |
| Clinopodic acid O (133) | S. kitaibelii, S. biflora, S. pilosa | [76,77,81,97] |
| Clinopodic acid P (134) | S. biflora | [77] |
| Melitric acid A (135) | S. biflora | [77] |
| Methyl melitric acid A (136) | S. biflora | [77] |
| Rosmarinic acid (137) | S. subspicata, S. montana, S. avromanica, S. kitaibelii, S. hortensis, S. cuneifolia, S. boissieri, S. biflora, S. bachtiarica, S. sahendica, S. horvatii, S. macrantha; S. aintabensis, S. spicigera, S. hasturkii. S. pilosa | [8,21,31,33,36,44,55,71,76,77,78,79,82,84,85,86,87,88,89,90,91,93,94,98], |
| Rosmarinic acid methyl ester (138) | S. hortensis | [41] |
| Rosmarinic acid glucuronide * | S. cuneifolia | [33] |
| Rosmarinic acid hexoside * | S. kitaibelii | [76] |
| Chicoric acid (139) | S. pilosa | [79] |
| Sagerinic acid (140) | S. barceloi | [95] |
| Sagecoumarin (141) | S. montana, S. bachtiarica | [87,93] |
| Verbascoside (142) | S. spicigera | [85] |
| Other acids | ||
| 2,3-dihydroxyphenylacetic acid (143) | S. montana | [96] |
| 3,4-dihydroxyphenylacetic acid (144) | S. montana | [96] |
| Jasmonates | Plant | Reference |
| (Z)-Jasmone (145) | S. calamintha spp. nepeta | [27] |
| 12-Hydroxyjasmonic acid (146) | S. bachtiarica | [87] |
| 12-O-Hexosyljasmonate * | S. kitaibelii | [76] |
| 12-Hydroxyjasmonic acid 12-O-hexoside * | S. kitaibelii | [77] |
| 12-O-(Caffeoylhexosyl)-jasmonate | S. kitaibelii | [76,77] |
| 12-O-(Methylcaffeoyl)hexosyl-jasmonate * | S. kitaibelii | [76] |
| Tuberonic acid 12-O-[6’-O-(E)-feruloyl]-β-d-glucopyranoside (147) | S. bachtiarica | [87] |
| 12-Hydroxyjasmonic acid-(6’-O-caffeoyl)-glucoside (148) | S. bachtiarica | [87] |
| Diterpenes, triterpenes, steroids | ||
| Rosmanol (149) | S. kitaibelii | [76,77] |
| Carnosic acid (150) | S. barceloi | [95] |
| Ursolic acid (151) | S. montana | [92] |
| Oleanolic acid (152) | S. bachtiarica | [87,92] |
| Ergosterol (153) | S. hortensis | [92] |
| β-Sitosterol (154) | S. hortensis | [92] |
| (3β,22E)-Ergosta-5,22-dien 3-acetate (155) | S. hortensis | [11] |
| 11α-Hydroxyandrosta-1,4-diene-3,17-dione (156) | S. hortensis | [11] |
| 3-Oxo-20-methyl-11α-hydroxyconanine-1,4-diene (157) | S. hortensis | [11] |
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Alburqan, M.; Veres, K.; Hohmann, J. Current Knowledge of the Genus Satureja: A Comprehensive Review of Its Traditional Use, Phytochemistry, Pharmacological Activity and Non-Medical Applications. Pharmaceuticals 2026, 19, 875. https://doi.org/10.3390/ph19060875
Alburqan M, Veres K, Hohmann J. Current Knowledge of the Genus Satureja: A Comprehensive Review of Its Traditional Use, Phytochemistry, Pharmacological Activity and Non-Medical Applications. Pharmaceuticals. 2026; 19(6):875. https://doi.org/10.3390/ph19060875
Chicago/Turabian StyleAlburqan, Marah, Katalin Veres, and Judit Hohmann. 2026. "Current Knowledge of the Genus Satureja: A Comprehensive Review of Its Traditional Use, Phytochemistry, Pharmacological Activity and Non-Medical Applications" Pharmaceuticals 19, no. 6: 875. https://doi.org/10.3390/ph19060875
APA StyleAlburqan, M., Veres, K., & Hohmann, J. (2026). Current Knowledge of the Genus Satureja: A Comprehensive Review of Its Traditional Use, Phytochemistry, Pharmacological Activity and Non-Medical Applications. Pharmaceuticals, 19(6), 875. https://doi.org/10.3390/ph19060875

