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Lavandula angustifolia Araştırmasındaki Eğilimler ve İçgörüler: Eleştirel Literatür Taraması ve Scopus ile PubMed Veritabanlarının Bibliyometrik Analizi

Year 2024, Volume: 7 Issue: 3, 161 - 179
https://doi.org/10.38001/ijlsb.1514950

Abstract

İngiliz Lavantası (Lavandula angustifolia), aromatik ve farmasötik bitkilerin ana kaynaklarından biri olarak kabul edilir ve birçok uçucu organik bileşik (VOC) kaynağıdır. Bu aromatik bitki, sağlık, kozmetik ve gıda endüstrilerindeki çeşitli uygulamalarıyla geniş çapta incelenmiştir. Scopus ve PubMed veritabanlarının eleştirel bir literatür taraması (CLR) ve bibliyometrik analizi gerçekleştirilmiş ve yayın eğilimleri, etkili yazarlar ve kurumlar ile mevcut literatürün tematik odaklanmalarıyla ilgili metadatalar çıkarılıp analiz edilmiştir. Bu çalışma üç ana bulguyu ortaya koymaktadır: 2006, 2014 ve 2020 yıllarında araştırma yayınlarında artışlar, bu dönemlerde L. angustifolia araştırmalarına artan ilgi olduğunu göstermektedir; Amerika Birleşik Devletleri, İran ve Çin'den önemli katkılar, CNRS ve Tahran Üniversitesi Tıp Bilimleri gibi önde gelen kurumlar, bu bitkinin küresel ve çok disiplinli çekiciliğini yansıtmaktadır. Çalışma, bibliyometrik analizler için VOS-viewer yazılımının kullanılmasının, yeni çalışmalar ve iş birliği ağlarını belirlemede önemli bir rol oynadığını, böylece gelecekteki araştırma yönlerini yönlendirdiğini sonucuna varmaktadır. Bu kapsamlı analiz, L. angustifolia'nın çeşitli bilimsel alanlardaki önemli ve gelişen etkisini vurgulamaktadır.

References

  • 1. Abuhamdah, S., and P. L. Chazot, Lemon balm and lavender herbal essential oils: old and new ways to treat emotional disorders?. Current Anaesthesia & Critical Care, 2008. 19(4), 221-226.
  • 2. Adam, K., et al., 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.
  • 3. Cavanagh, H. M. A., and J. M. Wilkinson, Biological activities of lavender essential oil. Phytotherapy research, 2002. 16(4), 301-308.
  • 4. Chen, C. C., et al., In vitro propagation and analysis of secondary metabolites in Glossogyne tenuifolia (Hsiang-Ju)-a medicinal plant native to Taiwan. Botanical Studies, 2004. 55, 1-9.
  • 5. Dapkevicius, A., et al., Antioxidant activity of extracts obtained by different isolation procedures from some aromatic herbs grown in Lithuania. Journal of the Science of Food and Agriculture, 1998. 77(1), 140-146.
  • 6. Davison, B., et al., The impact of biotechnological advances on the future of US bioenergy. Biofuels, 2015. 9. https://doi.org/10.1002/bbb.1549. 7. Enfissi, E., et al., New plant breeding techniques and their regulatory implications: An opportunity to advance metabolomics approaches.. Journal of plant physiology, 2021. 258-259, 153378 . https://doi.org/10.1016/j.jplph.2021.153378.
  • 8. Falagas, M., et al., Comparison of PubMed, Scopus, Web of Science, and Google Scholar: strengths and weaknesses. The FASEB Journal, 2007. 22, 338 - 342. https://doi.org/10.1096/fj.07-9492LSF.
  • 9. Figueiredo, A. C., et al., Factors affecting secondary metabolite production in plants: volatile components and essential oils. Flavour and Fragrance journal, 2008. 23(4), 213-226.
  • 10. Benachour, K., Insect visitors of lavender (Lavandula officinalis L.): Comparison of quantitative and qualitative interactions of the plant with its main pollinators. African Entomology, 2007. 25(2), 435-444.
  • 11. Kim, Y. J., et al., Lavandula angustifolia Mill. inhibits high glucose and nicotine-induced Ca2+ influx in microglia and neuron-like cells via two distinct mechanisms. Biomedicine & Pharmacotherapy, 2024. 177, 117062.
  • 12. Lane, A., et al., A genomics resource for investigating regulation of essential oil production in Lavandula angustifolia. Planta, 2010. 231, 835-845.
  • 13. Lehrner, J., et al., Ambient odors of orange and lavender reduce anxiety and improve mood in a dental office. Physiology & Behavior, 2005. 86(1-2), 92-95.
  • 14. Limera, C., et al., New Biotechnological Tools for the Genetic Improvement of Major Woody Fruit Species. Frontiers in Plant Science, 2017. 8. https://doi.org/10.3389/fpls.2017.01418.
  • 15. Mazraeh, A., H. Tavallali and V. Tavallali, Variations in the biochemical characteristics of Lavandula sublepidota Rech. f. in response to the foliar enrichment of green-synthesized copper nano complexes from extract of Neem and Jujube. Plant Physiology and Biochemistry, 2024. 108885.
  • 16. Miliauskas, G., et al., Screening of radical scavenging activity of some medicinal and aromatic plant extracts. Food chemistry, 2024. 85(2), 231-237.
  • 17. Moral-Muñoz, J., et al., Software tools for conducting bibliometric analysis in science: An up-to-date review. El Profesional de la Información. 2020. https://doi.org/10.3145/epi.2020.ene.03. 179
  • 18. Nakajima, D., et al., Sex differences in the effects of aromatherapy on anxiety and salivary oxytocin levels. Frontiers in Endocrinology, 2024. 15, 1380779.
  • 19. Noman, A., et al., Biotechnological Advancements for Improving Floral Attributes in Ornamental Plants. Frontiers in Plant Science, 2017. 8. https://doi.org/10.3389/fpls.2017.00530.
  • 20. Shan, J., et al., β-Cyclocitral from Lavandula angustifolia Mill. Exerts Anti-Aging Effects on Yeasts and Mammalian Cells via Telomere Protection, Antioxidative Stress, and Autophagy Activation. Antioxidants, 2024. 13(6), 715.
  • 21. Soden, K., et al., A randomized controlled trial of aromatherapy massage in a hospice setting. Palliative medicine, 2004. 18(2), 87-92.
  • 22. Tasheva, K., and G. Kosturkova, Role of biotechnology for protection of endangered medicinal plants. Environmental biotechnology-New approaches and prospective applications, 2013. 235-238.
  • 23. Upson, T., The taxonomy of the genus Lavandula L. In Lavender 2002. pp. 16-48. CRC Press.
  • 24. Van Eck, N., and L. Waltman, Software survey: VOSviewer, a computer program for bibliometric mapping. Scientometrics, 2009. 84, 523 - 538. https://doi:10.1007/s11192-009-0146-3.
  • 25. Xiao, Y., and M. Watson, Guidance on conducting a systematic literature review. Journal of Planning Education and Research, 2017. 39, 112 - 93. https://doi:10.1177/0739456X17723971.
  • 26. Yahya, M. A., and H. Mammadzada, Targeting generation Z: A systematic literature review (SLR) and bibliometric analysis for effective marketing. Journal of Politics Economy and Management, 2024c. 7(1), 21-44.
  • 27. Yahya, M. A., et al., In vitro production of Phalaenopsis orchids. Turkish Journal of Biodiversity, 2024b. 7(1), 41-53. https://doi.org/10.38059/biodiversity.1452374 28. Yahya, M.A., et al., Phenolic profile and volatiles of in vitro propagated Lavandula angustifolia mill. seedlings. PhytonInternational Journal of Experimental Botany, 2024a. 93(3), 427-444. https://doi.org/10.32604/phyton.2024.046271 29. Vieira, E., and J. Gomes, A comparison of Scopus and Web of Science for a typical university. Scientometrics, 2009. 81, 587-600. https://doi:10.1007/s11192-009-2178-0
  • 30. Burnham, J., Scopus database: a review. Biomedical Digital Libraries, 2006. 3, 1. https://doi:10.1186/1742-5581-3-1
  • 31. Zhu, J., and W. Liu, A tale of two databases: the use of Web of Science and Scopus in academic papers. Scientometrics, 2020. 123, 321-335. https://doi:10.1007/s11192-020-03387-8
  • 32. Singh, V., et al. The journal coverage of Web of Science, Scopus and Dimensions: A comparative analysis. Scientometrics, 2020. 126, 5113-5142. https://doi:10.1007/s11192-021-03948-5

Trends and Insights in Lavandula angustifolia Research: A Critical Literature Review (CLR) and Bibliometric Analysis of Scopus and PubMed Databases

Year 2024, Volume: 7 Issue: 3, 161 - 179
https://doi.org/10.38001/ijlsb.1514950

Abstract

English Lavender (Lavandula angustifolia) is considered one of the major sources of aromatic and pharmaceutical plants, as well as a source of several volatile organic compounds (VOCs). This aromatic plant has been widely studied for its diverse range of applications in the healthcare, cosmetic, and food industries. A critical literature review (CLR) and bibliometric analysis of the Scopus and PubMed databases were conducted, focusing on extracting and analyzing metadata related to publication trends, influential authors and institutions, and the thematic focus of the existing literature. This study reveals three major findings: spikes in research publications in 2006, 2014, and 2020, suggesting heightened interest on L. angustifolia research during these periods; significant contributions from the United States, Iran, and China, with prominent institutions like CNRS and Tehran University of Medical Sciences reflecting its global and multidisciplinary appeal; and a wide range of scientific applications, particularly in agricultural sciences, medicine, and biochemistry, with a strong emphasis on peer-reviewed papers and reviews. The study concludes that utilizing VOS-viewer software for bibliometric analyses plays a pivotal role in identifying novel works and collaboration networks, thereby guiding future research directions. This comprehensive analysis underscores L. angustifolia 's significant and evolving impact across various scientific fields.

References

  • 1. Abuhamdah, S., and P. L. Chazot, Lemon balm and lavender herbal essential oils: old and new ways to treat emotional disorders?. Current Anaesthesia & Critical Care, 2008. 19(4), 221-226.
  • 2. Adam, K., et al., 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.
  • 3. Cavanagh, H. M. A., and J. M. Wilkinson, Biological activities of lavender essential oil. Phytotherapy research, 2002. 16(4), 301-308.
  • 4. Chen, C. C., et al., In vitro propagation and analysis of secondary metabolites in Glossogyne tenuifolia (Hsiang-Ju)-a medicinal plant native to Taiwan. Botanical Studies, 2004. 55, 1-9.
  • 5. Dapkevicius, A., et al., Antioxidant activity of extracts obtained by different isolation procedures from some aromatic herbs grown in Lithuania. Journal of the Science of Food and Agriculture, 1998. 77(1), 140-146.
  • 6. Davison, B., et al., The impact of biotechnological advances on the future of US bioenergy. Biofuels, 2015. 9. https://doi.org/10.1002/bbb.1549. 7. Enfissi, E., et al., New plant breeding techniques and their regulatory implications: An opportunity to advance metabolomics approaches.. Journal of plant physiology, 2021. 258-259, 153378 . https://doi.org/10.1016/j.jplph.2021.153378.
  • 8. Falagas, M., et al., Comparison of PubMed, Scopus, Web of Science, and Google Scholar: strengths and weaknesses. The FASEB Journal, 2007. 22, 338 - 342. https://doi.org/10.1096/fj.07-9492LSF.
  • 9. Figueiredo, A. C., et al., Factors affecting secondary metabolite production in plants: volatile components and essential oils. Flavour and Fragrance journal, 2008. 23(4), 213-226.
  • 10. Benachour, K., Insect visitors of lavender (Lavandula officinalis L.): Comparison of quantitative and qualitative interactions of the plant with its main pollinators. African Entomology, 2007. 25(2), 435-444.
  • 11. Kim, Y. J., et al., Lavandula angustifolia Mill. inhibits high glucose and nicotine-induced Ca2+ influx in microglia and neuron-like cells via two distinct mechanisms. Biomedicine & Pharmacotherapy, 2024. 177, 117062.
  • 12. Lane, A., et al., A genomics resource for investigating regulation of essential oil production in Lavandula angustifolia. Planta, 2010. 231, 835-845.
  • 13. Lehrner, J., et al., Ambient odors of orange and lavender reduce anxiety and improve mood in a dental office. Physiology & Behavior, 2005. 86(1-2), 92-95.
  • 14. Limera, C., et al., New Biotechnological Tools for the Genetic Improvement of Major Woody Fruit Species. Frontiers in Plant Science, 2017. 8. https://doi.org/10.3389/fpls.2017.01418.
  • 15. Mazraeh, A., H. Tavallali and V. Tavallali, Variations in the biochemical characteristics of Lavandula sublepidota Rech. f. in response to the foliar enrichment of green-synthesized copper nano complexes from extract of Neem and Jujube. Plant Physiology and Biochemistry, 2024. 108885.
  • 16. Miliauskas, G., et al., Screening of radical scavenging activity of some medicinal and aromatic plant extracts. Food chemistry, 2024. 85(2), 231-237.
  • 17. Moral-Muñoz, J., et al., Software tools for conducting bibliometric analysis in science: An up-to-date review. El Profesional de la Información. 2020. https://doi.org/10.3145/epi.2020.ene.03. 179
  • 18. Nakajima, D., et al., Sex differences in the effects of aromatherapy on anxiety and salivary oxytocin levels. Frontiers in Endocrinology, 2024. 15, 1380779.
  • 19. Noman, A., et al., Biotechnological Advancements for Improving Floral Attributes in Ornamental Plants. Frontiers in Plant Science, 2017. 8. https://doi.org/10.3389/fpls.2017.00530.
  • 20. Shan, J., et al., β-Cyclocitral from Lavandula angustifolia Mill. Exerts Anti-Aging Effects on Yeasts and Mammalian Cells via Telomere Protection, Antioxidative Stress, and Autophagy Activation. Antioxidants, 2024. 13(6), 715.
  • 21. Soden, K., et al., A randomized controlled trial of aromatherapy massage in a hospice setting. Palliative medicine, 2004. 18(2), 87-92.
  • 22. Tasheva, K., and G. Kosturkova, Role of biotechnology for protection of endangered medicinal plants. Environmental biotechnology-New approaches and prospective applications, 2013. 235-238.
  • 23. Upson, T., The taxonomy of the genus Lavandula L. In Lavender 2002. pp. 16-48. CRC Press.
  • 24. Van Eck, N., and L. Waltman, Software survey: VOSviewer, a computer program for bibliometric mapping. Scientometrics, 2009. 84, 523 - 538. https://doi:10.1007/s11192-009-0146-3.
  • 25. Xiao, Y., and M. Watson, Guidance on conducting a systematic literature review. Journal of Planning Education and Research, 2017. 39, 112 - 93. https://doi:10.1177/0739456X17723971.
  • 26. Yahya, M. A., and H. Mammadzada, Targeting generation Z: A systematic literature review (SLR) and bibliometric analysis for effective marketing. Journal of Politics Economy and Management, 2024c. 7(1), 21-44.
  • 27. Yahya, M. A., et al., In vitro production of Phalaenopsis orchids. Turkish Journal of Biodiversity, 2024b. 7(1), 41-53. https://doi.org/10.38059/biodiversity.1452374 28. Yahya, M.A., et al., Phenolic profile and volatiles of in vitro propagated Lavandula angustifolia mill. seedlings. PhytonInternational Journal of Experimental Botany, 2024a. 93(3), 427-444. https://doi.org/10.32604/phyton.2024.046271 29. Vieira, E., and J. Gomes, A comparison of Scopus and Web of Science for a typical university. Scientometrics, 2009. 81, 587-600. https://doi:10.1007/s11192-009-2178-0
  • 30. Burnham, J., Scopus database: a review. Biomedical Digital Libraries, 2006. 3, 1. https://doi:10.1186/1742-5581-3-1
  • 31. Zhu, J., and W. Liu, A tale of two databases: the use of Web of Science and Scopus in academic papers. Scientometrics, 2020. 123, 321-335. https://doi:10.1007/s11192-020-03387-8
  • 32. Singh, V., et al. The journal coverage of Web of Science, Scopus and Dimensions: A comparative analysis. Scientometrics, 2020. 126, 5113-5142. https://doi:10.1007/s11192-021-03948-5
There are 29 citations in total.

Details

Primary Language English
Subjects Plant Biotechnology
Journal Section Research Articles
Authors

Mir Abdullatif Yahya 0000-0002-3699-2983

Publication Date
Submission Date July 12, 2024
Acceptance Date October 7, 2024
Published in Issue Year 2024 Volume: 7 Issue: 3

Cite

EndNote Yahya MA Trends and Insights in Lavandula angustifolia Research: A Critical Literature Review (CLR) and Bibliometric Analysis of Scopus and PubMed Databases. International Journal of Life Sciences and Biotechnology 7 3 161–179.



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