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References
Aleixo AA, Camargos VN, Herrera KMS, Andrade ACDSP, dos Santos M, Miranda VC, Ferreira JMS (2015). Synergistic activity from Hymenaea courbaril L. and Stryphnodendron adstringens (Mart.) Coville against multidrug-resistant bacteria strains. Journal of Medicinal Plants Research 9(26):741-748. |
|
Ascione F, Vasaturo A, Caserta S, D'Esposito V, Formisano P, Guido S (2016). Comparison between fibroblast wound healing and cell random migration assays in vitro. Experimental Cell Research 347(1):123-132. |
|
Aslam MS, Ahmad MS, Riaz H, Raza AS, Hussain S, Qureshi OS, Javed O (2018). Role of Flavonoids as Wound Healing Agent. In Phytochemicals-Source of Antioxidants and Role in Disease Prevention pp. 95-102. |
|
Barreiros ALBS, David JM, David JP (2006). Oxidative stress: relationship between generation of reactive species and defense of the organism. Química Nova 29(1):113-123. |
|
Batiha GES, Beshbishy AM, Ikram M, Mulla ZS, El-Hack MEA, Taha AE, Elewa YHA (2020). The pharmacological activity, biochemical properties, and pharmacokinetics of the major natural polyphenolic flavonoid: quercetin. Foods 9(3):374. |
|
Bezerra G, Góis R, Brito T, Lima F, Bandeira M, Romero N, Santiago GMP (2013). Phytochemical study guided by the myorelaxant activity of the crude extract, fractions and constituent from stem bark of Hymenaea courbaril L. Journal of Ethnopharmacology 149(1):62-69. |
|
Boniface PK, Ferreira SB, Kaiser CR (2017). Current state of knowledge on the traditional uses, phytochemistry and pharmacology of the genus Hymenaea. Journal of ethnopharmacology 206:193-223. |
|
Brand-Williams W, Cuvelier ME, Berset CLWT (1995). Use of a free radical method to evaluate antioxidant activity. LWT-Food science and Technology 28(1):25-30. |
|
Brito FCR, da Cunha LDC, Gonçalves DO, Olinda TM (2015). Antiinflammatory and antinociceptive actions of the ethanol extract of Hymenaea courbaril L. in rodents. Animal Science 25(3):4-14. |
|
Cecílio AB, de Faria DB, de Carvalho Oliveira P, Caldas S, de Oliveira DA, Sobral MEG, de Almeida VL (2012). Screening of Brazilian medicinal plants for antiviral activity against rotavirus. Journal of Ethnopharmacology 141(3):975-981. |
|
Correa MN, Aguirre OER, Palacios JDCA (2020). Antimicrobial activity of Hymenaea courbaril L. Fruit. Asian Journal of Pharmaceutical and Clinical Research 13(6):200-203. |
|
De Prado EML, Rodrigues WD, d'Alencar T, Guedes RA, Villanova JCO, Severi JA (2018). Therapeutic potential of plants with mucilages in wound healing. Special Topics in Animal Science VII, Chapter 14(1):198-217. |
|
Dzia?o M, Mierziak J, Korzun U, Preisner M, Szopa J, Kulma A (2016). The Potential of Plant Phenolics in Prevention and Therapy of Skin Disorders. International Journal of Molecular Science 17(2):160. |
|
Ewing JF, Janero DR (1995). Microplate Superoxide Dismutase Assay Employing a Nonenzymatic Superoxide Generator. Analytical Biochemistry 232(2):243-248. |
|
Figueiredo PA, Spera KD, Gomes AC, Dokkedal AL, Saldanha LL, Ximenes VF, Silva LP, da Silva RMG (2016). Antioxidant activity and chemical characterization of extracts of the genus Hymenaea. Research Journal of Medicinal Plants 10:330-339. |
|
Fracassetti D, Costa C, Moulay L, Tomás-Barberán FA (2013). Ellagic acid derivatives, ellagitannins, proanthocyanidins and other phenolics, vitamin C and antioxidant capacity of two powder products from camu-camu fruit (Myrciaria dubia). Food Chemistry 139(14):578-588. |
|
Freiesleben SH, Soelberg J, Nyberg NT, Jäger A (2017). Determination of the Wound Healing Potentials of Medicinal Plants Historically Used in Ghana. Evidence-Based Complementary and Alternative Medicine 1-6. |
|
Freshney I (1994). Animal cell culture: introduction to biotechniques edited by SJ Morgan and DC Darling. Bioessays 16:218-218. |
|
Ghosh PK, Gaba A (2013). Phyto-Extracts in Wound Healing. Journal of Pharmacy and Pharmaceutical Sciences 16(5):760. |
|
Grada A, Otero-Vinas M, Prieto-Castrillo F, Obagi Z, Falanga V (2017). Research techniques made simple: analysis of collective cell migration using the wound healing assay. Journal of Investigative Dermatology 137(2):e11-e16. |
|
Güzel S, Özay Y, Kuma? M, Uzun C, Özkorkmaz EG, Y?ld?r?m Z, Kahraman A (2019). Wound healing properties, antimicrobial and antioxidant activities of Salvia kronenburgii Rech. f. and Salvia euphratica Montbret, Aucher & Rech. f. var. euphratica on excision and incision wound models in diabetic rats. Biomedicine & Pharmacotherapy 111:1260-1276. |
|
Kajdžanoska M, Gjamovski V, Stefova M (2010). HPLC-DAD-ESI-MSn identification of phenolic compounds in cultivated strawberries from Macedonia. Macedonian Journal of Chemistry and Chemical Engineering 29(2):181-194. |
|
Kaurinovic B, Vastag D (2019). Flavonoids and phenolic acids as potential natural antioxidants. In: Antioxidants, pp. 1-20. |
|
Majewska I, Gendaszewska-Darmach E (2011). Proangiogenic activity of plant extracts in accelerating wound healing - a new face of old phytomedicines. Acta Biochimica Polonica 58(4):449-460. |
|
Maver T, Maver V, Stana KK, Smrke DM, Kreft S (2015). A review of herbal medicines in wound healing. International Journal of Dermatology 54(7):740-751. |
|
Menezes Filho ACP, de Oliveira Filho JG, de Souza Castro CF (2020). Antioxidant and antifungal evaluations of the essential oils of Hymenaea stigonocarpa Mart. ex Hayne and Hymenaea courbaril L. Journal of Biotechnology and Biodiversity 8(2):104-114. |
|
Nakayama GR, Caton MC, Nova MP, Parandoosh Z (1997). Assessment of the Alamar Blue assay for cellular growth and viability in vitro. Journal of Immunological Methods 204(2):205-208. |
|
Oliveira AC, Rocha DM, Bezerra SMG, Andrade EMLR, Santos AM, Nogueira LT (2019). Quality of life of people with chronic wound. Acta Paulista de Enfermagem 32(2):194-201. |
|
Ozay U, Guzel S, Erdogdu IH, Yildirim Z, Pehlivanoglu B , Ayd?n Turk B, Darcan S (2018). Evaluation of the wound healing properties of luteolin ointments on excision and incision wound models in diabetic and non-diabetic rats. Records of Natural Products 12(14):350-366. |
|
Pessoa AF, Florim JC, Rodrigues HG, Andrade-Oliveira V, Teixeira SA, Vitzel KF, Curi R, Saraiva Câmara NO, Muscará MN, Lamers ML, Santos MF (2016). Oral administration of antioxidants improves skin wound healing in diabetic mice. Wound Repair and Regeneration 24(6):981-993. |
|
Pang Y, Zhang Y, Huang L, Xu L, Wang K, Wang D, Xie X (2017). Effects and mechanisms of total flavonoids from Blumea balsamifera (L.) DC. on skin wound in rats. International Journal of Molecular Sciences 18(12):2766. |
|
Re R, Pellegrini N, Proteggente A, Pannala A, Yang M, Rice-Evans C (1999). Antioxidant activity applying an improved ABTS radical cation decolorization assay. Free Radical Biology and Medicine 26(9-10):1231-1237. |
|
Sarmento P, Ataíde T, Barbosa A, Araújo-Júnior J, Lúcio I, Bastos M (2014). Evaluation of the extract of Zeyheria tuberculosa with a view to products for wound healing. Revista Latino-Americana de Enfermagem 22(1):165-172. |
|
Schwartz G (2018). Jatoba-Hymenaea courbaril. In: In: Rodrigues S, Silva EO, Brito ES. Exotic fruits: reference guide. London: Academic Press pp. 257-261 |
|
Shin GH, Kim JT, Park HJ (2015). Recent developments in nanoformulations of lipophilic functional foods. Trends in Food Science and Technology 46(1):144-157. |
|
Singleton VL, Rossi JA (1965). Colorimetry of total phenolics with phosphomolybdic-phosphotungstic acid reagents. American Journal of Enology and Viticulture 16(3):144-158. |
|
Silva RWV, Martins GMG, Nascimento RAD, Viana AFDS, Aguiar FSD, Silva B AD (2019). Use of the response surface methodology to optimize the extraction of phenolic compounds from the skin of Hymenaea courbaril L. (Jatobá). Brazilian Journal of Food Technology 22: e2018089. |
|
Silva Oliveira FG, de Souza Araújo C, Rolim LA, Barbosa-Filho JM, da Silva Almeida JR (2018). The genus Hymenaea (Fabaceae): A chemical and pharmacological review. Studies in Natural Products Chemistry 58:339-388. |
|
Sousa MSB, Vieira LM, Lima A (2011). Total phenolics and in vitro antioxidant capacity of tropical fruit pulp residues. Brazilian Journal of Food Technology 14(3):202-210. |
|
Spera KD, Figueiredo PA, Santos PC, Barbosa FC, Alves CP, Dokkedal AL, Silva RMD (2019). Genotoxicity, anti-melanoma and antioxidant activities of Hymenaea courbaril L. seed extract. Anais da Academia Brasileira de Ciências 91(4):e20180446. |
|
Suárez AI, Chávez K. (2018) Avaliação de Plantas Medicinais com Propriedades Anticâncer na América do Sul. Em: Akhtar M, Swamy M. (eds) Anticancer plants: Properties and Application. Springer, Cingapura pp. 229-283. |
|
Rocha VD, Bispo RB, Pedri ECM, Santos Cardoso E, Zortéa KÉM, Rossi AAB (2019). Genetic Diversity of Hymenaea Courbaril L. in the Mato Grosso Amazon: Implications for Conservation. Floresta 49(4):745-754. |
|
Tiago PV, Larocca D, Silva IV, Carpejani AA, Tiago AV, Dardengo JFE, Rossi AAB (2020). Morpho-anatomical, Phytochemical, and Histochemical characterization of Hymenaea courbaril (Leguminosae), occurring in Southern Amazon. Rodriguésia 71:e02182018. |
|
Veggi PC, Prado JM, Bataglion GA, Eberlin MN, Meireles MAA (2014). Obtaining phenolic compounds from Jatobá (Hymenaea courbaril L.) bark by supercritical fluid extraction. The Journal of supercritical fluids 89:68-77. |
|
Wolfe KL, Liu RH (2007). Cellular Antioxidant Activity (CAA) Assay for Assessing Antioxidants, Foods, and Dietary Supplements. Journal of Agricultural and Food Chemistry 55(22):8896-8907. |
|
Zhishen J, Mengcheng T, Jianming W (1999). The determination of flavonoid contents in mulberry and their scavenging effects on superoxide radicals. Food Chemistry 64(4):555-599. |
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