References
- Chopra H, Mohanta YK, Mahanta S, Mohanta TK, Singh I, Avula SK, et al.: Recent updates in nanotechnological advances for wound healing: A narrative review. Nanotechnol Rev 2023, 12:20230129.
- Su W-H, Cheng M-H, Lee W-L, Tsou T-S, Chang W-H, Chen C-S, et al.: Nonsteroidal anti-inflammatory drugs for wounds: pain relief or excessive scar formation? Mediators Inflamm 2010, 2010.
- Naskar A, Kim K: Recent advances in nanomaterial-based wound-healing therapeutics. Pharmaceutics 2020, 12:499.
- Nakashima A, Tomono S, Yamazaki T, Inui M, Morita N, Ichimonji I, et al.: Phospholipase A2 from bee venom increases poly (I: C)-induced activation in human keratinocytes. Int Immunol 2020, 32:371-383.
- de Moura Estevão LR, Cassini-Vieira P, Leite AGB, de Carvalho Bulhões AAV, da Silva Barcelos L, Evêncio-Neto J: Morphological evaluation of wound healing events in the excisional wound healing model in rats. Bio Protoc 2019, 9.
- Kurek-Górecka A, Górecki M, Rzepecka-Stojko A, Balwierz R, Stojko J: Bee products in dermatology and skin care. Molecules 2020, 25:556.
- Varghese R, Shinde V: Novel therapeutics and treatment regimen in wound healing. Int J Herb Med 2021, 9:12-18.
- Bava R, Castagna F, Musella V, Lupia C, Palma E, Britti D: Therapeutic Use of Bee venom and potential applications in veterinary medicine. Vet Sci 2023, 10:119.
- Münstedt K, Bogdanov S: Bee products and their potential use in modern medicine. Journal of ApiProduct and ApiMedical Science 2009, 1:57-63.
- Lukanc B, Potokar T, Erjavec V: Complete skin regeneration with medical honey after skin loss on the entire circumference of a leg in a cat. J Tissue Viability 2020, 29:148-152.
- Budak Ö, Çakıroğlu H: Examination the effects of chestnut and Manuka Honey for wound healing on mice experimental model. Medical Science and Discovery 2022, 9:170-174.
- JM: Propolis standardized extract (EPP-AF®), an innovative chemically and biologically reproducible pharmaceutical compound for treating wounds. Int J Biol Sci 2012, 8:512.
- Abu-Seida AM: Effect of propolis on experimental cutaneous wound healing in dogs. Vet Med Int 2015, 2015:672643.
- Han S, Lee K, Yeo J, Kim W, Park K: Biological effects of treatment of an animal skin wound with honeybee (Apis melifera L.) venom. Journal of Plastic, Reconstructive & Aesthetic Surgery 2011, 64.
- Lee KS, Kim BY, Yoon HJ, Choi YS, Jin BR: Secapin, a bee venom peptide, exhibits anti-fibrinolytic, anti-elastolytic, and anti-microbial activities. Dev Comp Immunol 2016, 63:27-35.
- Badr G, Hozzein WN, Badr BM, Al Ghamdi A, Saad Eldien HM, Garraud O: Bee venom accelerates wound healing in diabetic mice by suppressing activating transcription factor-3 (ATF-3) and inducible nitric oxide synthase (iNOS)-mediated oxidative stress and recruiting bone marrow-derived endothelial progenitor cells. J Cell Physiol 2016, 231:2159-2171.
- Araujo GS, Matos LJBL, Fernandes JO, Cartaxo SJM, Gonçalves LRB, Fernandes FAN, et al.: Extraction of lipids from microalgae by ultrasound application: Prospection of the optimal extraction method. Ultrason Sonochem 2013, 20:95-98.
- Escorsim AM, da Rocha G, Vargas JVC, Mariano AB, Ramos LP, Corazza ML, et al.: Extraction of Acutodesmus obliquus lipids using a mixture of ethanol and hexane as solvent. Biomass Bioenergy 2018, 108:470-478.
- Kim MG, Kim TH, Shin BS, Kim MG, Seok SH, Kim K-B, et al.: A sensitive LC-ESI-MS/MS method for the quantification of avobenzone in rat plasma and skin layers: Application to a topical administration study. Journal of Chromatography B 2015, 1003:41-46.
- Ren X, Zhao X, Turcotte F, Deschênes J-S, Tremblay R, Jolicoeur M: Current lipid extraction methods are significantly enhanced adding a water treatment step in Chlorella protothecoides. Microb Cell Fact 2017, 16:1-13.
- Cissell DD, Link JM, Hu JC, Athanasiou KA: A modified hydroxyproline assay based on hydrochloric acid in Ehrlich’s solution accurately measures tissue collagen content. Tissue Eng Part C Methods 2017, 23:243-250.
- Senthilkumar M, Amaresan N, Sankaranarayanan A: Estimation of Malondialdehyde (MDA) by Thiobarbituric Acid (TBA) Assay. In: Senthilkumar M, Amaresan N, Sankaranarayanan A, editors. Plant-Microbe Interactions: Laboratory Techniques [Internet]. New York, NY: Springer US; 2021. p. 103-105. Available from: https://doi.org/10.1007/978-1-0716-1080-0_25
- Alisik M, Neselioglu S, Erel O: A colorimetric method to measure oxidized, reduced and total glutathione levels in erythrocytes. Journal of Laboratory Medicine 2019, 43:269-277.
- Dondurmacıoğlu F, Avan AN, Apak R: Simultaneous detection of superoxide anion radicals and determination of the superoxide scavenging activity of antioxidants using a N,N-dimethyl-p-phenylene diamine/Nafion colorimetric sensor. Analytical Methods 2017, 9:6202-6212.
- Somwongin S, Chantawannakul P, Chaiyana W: Antioxidant activity and irritation property of venoms from Apis species. Toxicon 2018, 145:32-39.
- Dunn C, Brettle D, Cockroft M, Keating E, Revie C, Treanor D: Quantitative assessment of H&E staining for pathology: development and clinical evaluation of a novel system. Diagn Pathol 2024, 19:42.
- Wołuń-Cholewa M, Szymanowski K, Andrusiewicz M, Szczerba A, Warchoł JB: Trichrome Mallory’s stain may indicate differential rates of RNA synthesis in eutopic and ectopic endometrium. Folia Histochem Cytobiol 2010, 48:148-152.
- Gupta A, Kumar P: Assessment of the histological state of the healing wound. Plast Aesthet Res, 2015, 2:239-242.
- Lopes RHC: Kolmogorov-Smirnov Test. International encyclopedia of statistical science 2011, 1:718-720.
- Tabachnick BG, Fidell LS, Ullman JB: Using multivariate statistics. Pearson Boston, MA; 2013.
- Cangür Ş, Sungur MA, Ankaralı H: The methods used in nonparametric covariance analysis. Duzce Medical Journal 2018, 20:1-6.
- Ponrasu T, Jamuna S, Mathew A, Madhukumar KN, Ganeshkumar M, Iyappan K, Suguna L: Efficacy of L-proline administration on the early responses during cutaneous wound healing in rats. Amino Acids 2013, 45:179–89.
- Ozmen I, Gunal YD, Atasoy P, Kisa U, Yorubulut S, Aslan MK, et al.: The effect of extractum cepae, heparin sodium, and allantoin in experimental peritoneal adhesion. Indian Journal of Surgery 2020, 82:892-898.
- Pereira LM, Hatanaka E, Martins EF, Oliveira F, Liberti EA, Farsky SH, Curi R, Pithon-Curi TC: Effect of oleic and linoleic acids on the inflammatory phase of wound healing in rats. Cell Biochem Funct 2008, 26:197–204.
- Chettibi S, Lyall F, Lawrence AJ: Rapid activation of the non-toxic basic isoform of phospholipase A2 from Naja mossambica mossambica (spitting cobra) by long-chain fatty acylation. Toxicon 1990, 28:953-961.
- Lyall F: Activation and regulation systems for venom phospholipases A2. University of Glasgow (United Kingdom); 1984.
- Kim D, Song H: Atopic dermatitis-related inflammation in macrophages and keratinocytes: The inhibitory effects of bee venom. 2019.
- Chan LS: Animal models of human inflammatory skin diseases. CRC Press; 2003.
- Mourelle D, Brigatte P, Bringanti LDB, De Souza BM, Arcuri HA, Gomes PC, et al.: Hyperalgesic and edematogenic effects of Secapin-2, a peptide isolated from Africanized honeybee (Apis mellifera) venom. Peptides (NY) 2014, 59:42-52.
- Tekin S, Seven E: Assessment of serum catalase, reduced glutathione, and superoxide dismutase activities and malondialdehyde levels in keratoconus patients. Eye 2022, 36:2062-2066.
- Wojtunik-Kulesza KA: Approach to optimization of FRAP methodology for studies based on selected monoterpenes. Molecules 2020, 25:5267.
- Kasozi KI, Niedbała G, Alqarni M, Zirintunda G, Ssempijja F, Musinguzi SP, et al.: Bee venom—a potential complementary medicine candidate for SARS-CoV-2 infections. Front Public Health 2020, 8:594458.
- Hozzein WN, Badr G, Badr BM, Allam A, Al Ghamdi A, Al-Wadaan MA, et al.: Bee venom improves diabetic wound healing by protecting functional macrophages from apoptosis and enhancing Nrf2, Ang-1 and Tie-2 signaling. Mol Immunol 2018, 103:322-335.