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Using Black Carrot Extracts as an Alternative Biological Dye for Tissue Staining | ||
Iranian Journal of Veterinary Medicine | ||
مقاله 13، دوره 18، شماره 2، تیر 2024، صفحه 279-290 اصل مقاله (3.31 M) | ||
نوع مقاله: Original Articles | ||
شناسه دیجیتال (DOI): 10.32598/ijvm.18.2.1005381 | ||
نویسندگان | ||
Mohammad Taghi Vajed Ebrahimi1؛ Farhad Mohammadi Gheshlagh2؛ Abbas Parham* 1 | ||
1Division of Physiology, Department of Basic Sciences, Faculty of Veterinary Medicine, Ferdowsi University of Mashhad, Mashhad, Iran. | ||
2Division of Histology, Department of Basic Sciences, Faculty of Veterinary Medicine, Ferdowsi University of Mashhad, Mashhad, Iran. | ||
چکیده | ||
Background: Tissue staining is pivotal in histology and histopathology, shouldering a noteworthy role in identifying and classifying tissues and diseases. Due to their non-production of toxic effluents, the utilization of plant-based dyes aligns harmoniously with environmental sustainability and the well-being of laboratory personnel and the general public. Furthermore, this approach is highly cost-effective, further enhancing its appeal. Objectives: This research study explored the feasibility of staining various tissues in mice, such as the liver, kidney, intestine, and cartilage, utilizing a dye extracted from black carrots. Methods: An ethanol extract of 200 g of fresh black carrots (Daucus carota L.) was prepared using 95% ethanol saturated with two different solvents in 200 mL of distilled water. Subsequently, the prepared sections of mice tissue were immersed in the extracted dye solution for 20 minutes, followed by assessment using a light microscope. Hematoxylin-eosin staining was used as a control. Results: The dye extracted from the black carrot using alum and acetic acid successfully stained the cartilage, kidney, intestine, and liver tissues, giving them a bluish-gray coloration. Phytochemical screening further confirmed the presence of anthocyanins in the black carrot extract. Conclusion: The dye derived from black carrots exhibits natural tissue staining capabilities, making it an alternative to hematoxylin-eosin in histology and histopathology laboratories. | ||
کلیدواژهها | ||
Black carrot؛ Histology؛ Natural dye؛ Staining؛ Tissue | ||
عنوان مقاله [English] | ||
استفاده از عصاره هویج سیاه بهعنوان رنگ طبیعی جایگزین در رنگآمیزی بافت | ||
نویسندگان [English] | ||
محمد تقی واجد ابراهیمی1؛ فرهاد محمدی قشلاق2؛ عباس پرهام1 | ||
1بخش فیزیولوژی، گروه علوم پایه، دانشکده دامپزشکی، دانشگاه فردوسی مشهد، مشهد، ایران. | ||
2بخش بافت شناسی، گروه علوم پایه، دانشکده دامپزشکی، دانشگاه فردوسی مشهد، مشهد، ایران. | ||
چکیده [English] | ||
زمینه مطالعه: رنگآمیزی بافت یک فرآیند ضروری در بافتشناسی و آسیبشناسی بافتی است و نقش بسزایی در تشخیص نوع بافت و بیماریها دارد. استفاده از رنگهای گیاهی بهدلیل عدم تولید پسابهای سمی، با محیط زیست سازگار هستند و سلامت کارکنان آزمایشگاه و عموم مردم را تأمین میکنند، علاوهبراین، بسیار مقرون بهصرفه میباشند. هدف: این مطالعه اثر رنگآمیزی بافتهای مختلف موش ازجمله کبد، کلیه، روده و غضروف، با استفاده از رنگ استخراجشده از هویج سیاه را بررسی کرده است. روش کار: عصاره اتانولی 200 گرم هویج سیاه تازه (Daucus Carota L.) در اتانول 95 درصد اشباعشده با 2 حلال مختلف در 200 میلیلیتر آب مقطر تهیه شد. مقاطع بافتی آمادهشده از بافت موش نر بهمدت 20 دقیقه در عصاره رنگی غوطهور شدند و درنهایت با میکروسکوپ نوری مورد ارزیابی قرار گرفتند. رنگآمیزی هماتوکسیلین-ائوزین بهعنوان شاهد استفاده شد. نتایج: رنگ استخراجشده از هویج سیاه با زاج و اسید استیک بافتهای غضروف، کلیه، روده و کبد را به رنگ آبی مایل به خاکستری درآورده است. غربالگری فتوشیمیایی وجود آنتوسیانین را در بافت هویج سیاه تأیید کرد. نتیجهگیری نهایی: رنگ تهیهشده از هویج سیاه بهراحتی میتواند بافتها را رنگ کند و در آزمایشگاههای بافتشناسی و آسیبشناسی بافتی بهعنوان جایگزین روش معمول هماتوکسیلین-ائوزین استفاده شود. | ||
کلیدواژهها [English] | ||
بافتشناسی, رنگآمیزی, رنگ گیاهی, هویج سیاه, بافت | ||
اصل مقاله | ||
Introduction
Discussion
Ethical Considerations
Acknowledgments
Adisa, J. O., Musa, K. K., Egbujo, E. C., & Uwaeme, I. M. (2017). A study of various modifications of Lawsonia inermis (Henna) leaf extract as a cytoplasmic stain in liver biopsies. International Journal of Research in Medical Sciences, 5(3), 1058–1065.[DOI:10.18203/2320-6012.ijrms20170662] Agbede, M., Benard, S., Afolabi, O., Okoye, J., Bankole, J., & Fowotade, A., et al. (2017). The use of Hibiscus sabdariffa extract as nuclear stain for skin morphology and connective tissue with eosin counterstain. Sokoto Journal of Medical Laboratory Science, 2(4), 28-32. [Link] Agcam, E., Akyıldız, A., & Balasubramaniam, V. M. (2017). Optimization of anthocyanins extraction from black carrot pomace with thermosonication. Food Chemistry, 237, 461-470. [DOI:10.1016/j.foodchem.2017.05.098][PMID] Ajileye, A. B., Iteire, A. K. & Arigi, Q. B. (2015). Zingiber officinale (ginger) extract as a histological dye for muscle fibers and cytoplasm. International Journal of Medical Science and Public Health, 4(10), 1445-1448. [Link] Akhtar, S., Rauf, A., Imran, M., Qamar, M., Riaz, M. & Mubarak, M. S. (2017). Black carrot (Daucus carota L.), dietary and health promoting perspectives of its polyphenols: A review. Trends in Food Science & Technology, 66, 36-47. [DOI:10.1016/j.tifs.2017.05.004] Algarra, M., Fernandes, A., Mateus, N., de Freitas, V., da Silva, J. C. E. & Casado, J. (2014). Anthocyanin profile and antioxidant capacity of black carrots (Daucus carota L. ssp. sativus var. atrorubens Alef.) from Cuevas Bajas, Spain. Journal of Food Composition and Analysis, 33(1), 71-76. [DOI:10.1016/j.jfca.2013.11.005] Alshamar, H. A. & Dapson, R. W. (2021). Use of roselle extracted from Hibiscus sabdariffa for histological staining: A critical review and rational stain formulation. Biotechnic & Histochemistry, 96(2), 94–101. [PMID] Alturkistani, H. A., Tashkandi, F. M., & Mohammedsaleh, Z. M. (2015). Histological stains: A literature review and case study. Global Journal of Health Science, 8(3), 72–79. [PMID] Baghkheirati, A. A., Shokrpoor, S., Hasanzadeh, M., Javid Nezhad, J., & Razmyar, J. (2023). Papillary Cystadenocarcinoma in a Budgerigar (Melopsittacus undulatus). Iranian Journal of Veterinary Medicine, 17(4), 409-414. [Link] Barba-Espín, G., Chen, S. T., Agnolet, S., Hegelund, J. N., Stanstrup, J., & Christensen, J. H., et al. (2020). Ethephon-induced changes in antioxidants and phenolic compounds in anthocyanin-producing black carrot hairy root cultures. Journal of Experimental Botany, 71(22), 7030–7045. [DOI:10.1093/jxb/eraa376][PMID] Benkhaya, S., El Harfi, S., & El Harfi, A. (2017). Classifications, properties and applications of textile dyes: A review. Applied Journal of Environmental Engineering Science, 3(3), 311-320. [Link] Blando, F., Marchello, S., Maiorano, G., Durante, M., Signore, A., & Laus, M. N., et al. (2021). Bioactive compounds and antioxidant capacity in anthocyanin-rich carrots: A comparison between the black carrot and the Apulian landrace “Polignano” carrot. Plants (Basel, Switzerland), 10(3), 564. [DOI:10.3390/plants10030564][PMID] Buitrago-Osorio, J., Tinoco, H. A., Perdomo-Hurtado, L., Rincon-Jimenez, A., Ocampo, O., & Berrio, L. V., et al. (2022). Physical-mechanical characterization of coffee fruits Coffea arabica L. var. Castillo classified by a colorimetry approach. Materialia, 21, 101330.0 [DOI:10.1016/j.mtla.2022.101330] Buwaeyusoh, F., & Jantarat, S. (2022). The efficacy of black glutinous rice (Mhor37) extract for use in plant chromosome staining. Paper presented at: E-Proceedings 3rd Insan Junior Researchers International Conference 2022 (iJURECON 2022), Kolej PERMATA Insan, Malaysia, 21-23rd October, 2022. [Link] Chaudhary, V., Shukla, A. & Modi, N. (2020). Unravelling sources of organic dyes for textile: an appraisal of approaches and eco-friendly applications. IJRAR-International Journal of Research and Analytical Reviews (IJRAR), 7(2), 520-526. [Link] Chinchón-Payá, S., Andrade, C., & Chinchón, S. (2020). Use of anthocyanin solutions in portland cement concrete to identify carbonation depth. Materials and Structures, 53, 101. [Link] Chukwu, O., Odu, C., Chukwu, D., Hafiz, N., Chidozie, V., & Onyimba, I. (2011). Application of extracts of Henna (Lawsonia inamis) leaves as a counter stain. African Journal of Microbiology Research, 5(21), 3351-3356. [Link] Çoruh, O., Gündüz, G., Çolak, Ü. & Maviş, B. (2022). pH-Dependent Coloring of combination effect pigments with anthocyanins from brassica oleracea var. capitata F. rubra. Colorants, 1(2), 149-164. [DOI:10.3390/colorants1020010] Daryani, A., Sharif, M. & Meigouni, M. (2011). Staining of Fasciola hepatica by natural herbal dyes. Comparative Clinical Pathology, 20, 305-308. [Link] Enaru, B., Dretcanu, G., Pop, T. D., Stanila, A., & Diaconeasa, Z. (2021). Anthocyanins: Factors affecting their stability and degradation. Antioxidants, 10(12), 1967. [PMID] Espinosa-Acosta, G., Ramos-Jacques, A. L., Molina, G. A., Maya-Cornejo, J., Esparza, R., & Hernandez-Martinez, A. R., et al. (2018). Stability analysis of anthocyanins using alcoholic extracts from black carrot (Daucus carota ssp. Sativus var. Atrorubens alef.). Molecules, 23(11), 2744. [DOI:10.3390/molecules23112744][PMID] Fei, P., Zeng, F., Zheng, S., Chen, Q., Hu, Y., & Cai, J. (2021). Acylation of blueberry anthocyanins with maleic acid: Improvement of the stability and its application potential in intelligent color indicator packing materials. Dyes and Pigments, 184, 108852. [DOI:10.1016/j.dyepig.2020.108852] Gençdağ, E., Özdemir, E. E., Demirci, K., Görgüç, A., & Yılmaz, F. M. (2022). Copigmentation and stabilization of anthocyanins using organic molecules and encapsulation techniques. Current Plant Biology, 29, 100238. [DOI:10.1016/j.cpb.2022.100238] Ghareaghajlou, N., Hallaj-Nezhadi, S., & Ghasempour, Z. (2021).Red cabbage anthocyanins: Stability, extraction, biological activities and applications in food systems. Food Chemistry, 365, 130482. [PMID][DOI:10.1016/j.foodchem.2021.130482] Iqbal, S., & Ansari, T. N. (2021). Extraction and application of natural dyes. In: L. J. Rather, M. Shabbir, & A. Haji (Eds.), Sustainable Practices in the Textile Industry (pp. 1-40). [DOI:10.1002/9781119818915.ch1] Khodayari, M., Asghari Baghkheirati, A., Peighambari, S. M., Shokrpoor, S., & Razmyar, J. (2023). Abdominal hernia in a common mynah (acridotheres tristis) associated with hepatic lipidosis and concurrent respiratory aspergillosis. Iranian Journal of Veterinary Medicine, 17(1), 99-106. [DOI:10.22059/IJVM.17.1.1005114] Kiernan, J. (2018). Does progressive nuclear staining with hemalum (alum hematoxylin) involve DNA, and what is the nature of the dye-chromatin complex? Biotechnic & Histochemistry : Official Publication of the Biological Stain Commission, 93(2), 133–148. [PMID] Kusculu, N., & Eser, F. (2022). Applicability of alkanet (Alkanna tinctoria) extract for the histological staining of liver tissue. Journal of the Indian Chemical Society, 99(4), 100409. [DOI:10.1016/j.jics.2022.100409] Mahapatra, N., Babu, N. A., Behura, S. S. & Rajesh, E. (2020). A brief review on haematoxylin: An irreplaceable tissue stain. Indian Journal of Forensic Medicine & Toxicology, 14(4), 1221-1225. [DOI:10.37506/ijfmt.v14i4.11696] Mendoza, J., Pina, F., Basílio, N., Guimarães, M., de Freitas, V., & Cruz, L. (2018). Extending the stability of red and blue colors of malvidin-3-glucoside-lipophilic derivatives in the presence of SDS micelles. Dyes and Pigments, 151, 321-326. [DOI:10.1016/j.dyepig.2018.01.007] Mohamed Amine, F., Tarek, K., Djallal Eddine, R., Derradji, H., Hemida, H., & Mayouf, R. (2023). Development and maturation of the dromedary spleen: Anatomical and histological analysis during the first three years of life. Iranian Journal of Veterinary Medicine. [In Press]. [DOI:10.22059/IJVM.2023.356349.1005371] Mohammad Azmin, S. N. H., Sulaiman, N. S., Mat Nor, M. S., Abdullah, P. S., Abdul Kari, Z., & Pati, S. (2022). A review on recent advances on natural plant pigments in foods: Functions, extraction, importance and challenges. Applied Biochemistry and Biotechnology, 194, 4655-4672. [PMID] Mollaamin, F., Mohammadian, N. T., Najaflou, N., & Monajjemi, M. (2021). Iranian Qara Qat fruit (redcurrant) in Arasbaran forests as the resource of anthocyanin pigments in formation of [ACN-Mg2+/Al3+/Ga3+/ Sn2+/Cr3+/Fe3+] chelation clusters. SN Applied Sciences, 3, 404. [Link] Mu, T. H., & Li, P. G. (2019). Sweet potato: Origin and production. In: T. H. Mu, & J. Singh (Eds.), Sweet potato (pp. 5-25)., Massachusetts: Academic Press. [DOI:10.1016/B978-0-12-813637-9.00002-8] Nabi, M., Latif, A., Ashiq, K., Parveen, R., Shah, S., & Fiaz, A., et al. (2023). Antioxidant and anti-inflammatory potential of daucus carota l. Seed extracts. JAPS: Journal of Animal & Plant Sciences, 33(1), 220-228. [Link] Nistor, M., Diaconeasa, Z., Frond, A. D., Stirbu, I., Socaciu, C., & Pintea, A., et al. (2021). Comparative efficiency of different solvents for the anthocyanins extraction from chokeberries and black carrots, to preserve their antioxidant activity. Chemical Papers, 75, 813-822. [Link] Nuryanti, S., Matsjeh, S., Anwar, C., & Raharjo, T. J. (2012). Isolation anthocyanin from roselle petals (Hibiscus sabdariffa L) and the effect of light on the stability. Indonesian Journal of Chemistry, 12(2), 167-171. [DOI:10.22146/ijc.21358] Richardson, D. S., & Lichtman, J. W. (2015). Clarifying tissue clearing. Cell, 162(2), 246–257. [PMID] Sk, S., Mia, R., Haque, A., & Shamim, A. M. (2021). Review on extraction and application of natural dyes. Textile & Leather Review, 4(4), 218-233. [DOI:10.31881/TLR.2021.09] Tochhawng, L., Mishra, V. K., Passari, A. K. & Singh, B. P. (2019). Endophytic fungi: Role in dye decolorization. In: B. Singh (Ed.), Advances in endophytic fungal research. Fungal biology. Cham: Springer. [Link] Tousson, E., & Al-Behbehani, B. (2011). Black mulberries (Morus nigra) as a natural dye for animal tissues staining. Animal Biology,61(1), 49-56 [DOI:10.1163/157075511X554419] Tousson, E. M., & Al-Behbehani, B. (2010). Black mulberries (Morus Nigra) as a natural dye for nervous tissues staining. The Egyptian Journal of Experimental Biology (Zoology), 6(1), 159-164. [Link] Yusuf, M., Shabbir, M., & Mohammad, F. (2017). Natural colorants: Historical, processing and sustainable prospects. Natural Products and Bioprospecting, 7(1), 123-145. [PMID] Zamora-Ros, R., Knaze, V., Luján-Barroso, L., Slimani, N., Romieu, I., & Touillaud, M., et al. (2011). Estimation of the intake of anthocyanidins and their food sources in the European Prospective Investigation into Cancer and Nutrition (EPIC) study. The British Journal of Nutrition, 106(7), 1090–1099. [DOI:10.1017/S0007114511001437] [PMID] | ||
مراجع | ||
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