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Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar

Year 2025, Volume: 54 Issue: Özel Sayı 1, 513 - 519, 25.03.2025
https://doi.org/10.53471/bahce.1548383

Abstract

Süs lahanaları (Brassica oleracea L. var. acephala), çarpıcı renk ve şekillerde yaprakları ve soğuk koşullara dayanımı ile kesme çiçek, saksı ve peyzaj bitkisi olarak değerlendirilmektedir. Süs lahanalarında yaprak rengi çeşitlilik göstermekte ve bitkinin süs bitkisi olarak değerlendirilme potansiyelini artırmaktadır. Genel olarak dış yapraklar yeşil tonlarında olurken iç kısımda gelişen yapraklar beyaz, pembe, kırmızı, mor renklerdedir. Gelişme dönemine ve çevresel koşullara göre yaprak rengi farklılık gösterebilmektedir. İç yaprakların kırmızı, pembe, mor veya beyaza dönüşümünün düşük sıcaklıklar tarafından teşvik edildiği, bu yolla bitkinin düşük sıcaklığa adaptasyon gösterdiği bildirilmektedir. Bitkilerde başlıca renk pigmentleri klorofil, karotenoidler ve antosiyaninlerdir. Süs lahanalarında başta antosiyaninler olmak üzere renk pigmentlerinin sentez yollarında yer alan genlerin ve transkripsiyon faktörlerinin belirlenmesine yönelik araştırmalar sürdürülmektedir. İlgili genlerin tespitine yönelik gen haritalarının oluşturulması ile genomik düzeyde ve RNA dizi analizleri ve gen ifade analizleri ile transkriptomik düzeyde çalışmalar yürütülmektedir. Son yıllarda CRISPR/Cas9 genom düzenleme yöntemi kullanılarak yaprak rengi ile ilişkili genlerin fonksiyonları oluşturulan mutant bitkilerle incelenmekte ve bu tekniğin süs lahanalarında kullanım olanağı değerlendirilmektedir. Süs lahanalarında yaprak renginin genetik ve moleküler mekanizmasının belirlenmesi yeni çeşitlerin geliştirilmesine yönelik ıslah çalışmaları bakımından önem taşımaktadır. Sunulan çalışmada süs lahanalarında yaprak rengi ile ilgili moleküler düzeyde yürütülen araştırmalar literatür bilgileri ışığında değerlendirilmiştir.

References

  • Yanmaz, R., Tuncer, B. 2008. Parklarımızın kış gülleri: Süs lahanaları. Hasad 24(279):90-93.
  • Sarıkamış, G. 2009. Glucosinolates in crucifers and their potential effects against cancer: Review. Canadian Journal of Plant Science 89(5):953-959.
  • He, L., Jiang, H., Li, Y., Zhang, X., Sun, W., Liu, C., Zhao, Z., Yun, C., Li, H., Wang, C. 2024. Sulforaphane-enriched extracts from broccoli exhibit antimicrobial activity against plant pathogens, promising a natural antimicrobial agent for crop protection. Biomolecules 14:352.
  • Kushad, M.M., Cloyd, R., Babadoost, M. 2004. Distribution of glucosinolates in ornamental cabbage and kale cultivars, Scientia Horticulturae 101(3):215-221.
  • Simon, P.W. 1997. Plant pigments for color and nutrition. HortScience 32:12-13.
  • Hughes, N.M., Carpenter, K.L., Cannon, J.G. 2012. Estimating contribution of anthocyanin pigments to osmotic adjustment during winter leaf reddening. Journal of Plant Physiology 170:230-233.
  • Tena, N., Martin, J., Asuero, A.G. 2020. State of the art of anthocyanins: Antioxidant activity, sources, bioavailability, and therapeutic effect in human health. Antioxidants 9:451.
  • Zou, J., Gong, Z., Liu, Z., Ren, J., Feng, H. 2023. Investigation of the key genes associated with anthocyanin accumulation during inner leaf reddening in ornamental kale (Brassica oleracea L. var. acephala). International Journal of Molecular Sciences 24:2837.
  • Zhu, P., Tian, Z., Pan, Z., Feng, X. 2017. Identification and quantification of anthocyanins in different coloured cultivars of ornamental kale (Brassica oleracea L. var. acephala DC). The Journal of Horticultural Science and Biotechnology 93(5):466-473.
  • An, J-P., Wang, X-F., Zhang, X-W., Xu, H-F., Bi, S-Q., You, C-X., Hao, Y-J. 2020. An apple MYB transcription factor regulates cold tolerance and anthocyanin accumulation and undergoes MIEL1-mediated degradation. Plant Biotechnology Journal 18:337-353.
  • Guo, N., Han, S., Zong, M., Wang, G., Zheng, S., Liu, F. 2019. Identification and differential expression analysis of anthocyanin biosynthetic genes in leaf color variants of ornamental kale. BMC Genomics 20:564.
  • Gonzalez, A., Zhao, M., Leavitt, J.M., Lloyd, M.A. 2010. Regulation of the anthocyanin biosynthetic pathway by the TTG1/bHLH/MYB transcriptional complex in Arabidopsis seedlings. Plant Journal 53(5):814-827.
  • Xiangjun, Z., Zhangjun. F., Thannhauser, T.W., Li, L. 2011. Transcriptome analysis of ectopic chloroplast development in green curd cauliflower (Brassica oleracea L. var. botrytis). BMC Plant Biology 11(1):169.
  • Liu, X., Chen, C.Y., Wang, K.C., Luo, M., Tai, R., Yuan, L., Zhao, M., Yang, S., Tian, G., Cui, Y., Hsieh, H-L., Wu, K. 2013. Phytochrome interacting factor3 associates with the histone deacetylase HDA15 in repression of chlorophyll biosynthesis and photosynthesis in etiolated Arabidopsis seedlings. Plant Cell 25(4):1258-1273.
  • Yan, C.H., Peng, L.Y., Zhang, L., Qiu, Z.M. 2020. Fine mapping of a candidate gene for cool-temperature-induced albinism in ornamental kale. BMC Plant Biology 20:460.
  • Tian, H., Fang, L., Zhang, Q., Wang, M., Wang, Y.,Jia, L. 2018. Transcriptome analysis of carotenoid biosynthesis in the Brassica campestris L. subsp. chinensis var. rosularis Tsen. Scientia Horticulturae 235:116-123.
  • Liu, Xp., Zhang, B., Wu, J., Li, Z., Han, F., Fang, Z., Yang, L., Zhuang, M., Lv, M., Liu, Y., Li, Z., Yu, H., Li, X., Zhang, Y. 2020. Pigment variation and transcriptional response of the pigment synthesis pathway in the S2309 triple-color ornamental kale (Brassica oleracea L. var. acephala) line, Genomics 112(3):2658-2665.
  • Xie, L.N. 2003. Genetic analysis of leaf color and shape and mechanism of self-incompatibility of Brassica oleracea var. acephala. Master’s thesis, Northeast Forestry University, Harbin.
  • Wang, Y.S., Liu, Z.Y., Li, Y.F., Zhang, Y., Yang, X.F., Feng, H. 2013. Identification of sequence-related amplified polymorphism markers linked to the red leaf trait in ornamental kale (Brassica oleracea L. var. acephala). Genetics and Molecular Research 12:870-877.
  • Ren, J., Liu, Z., Niu, R., Feng, H. 2015. Mapping of Re, a gene conferring the red leaf trait in ornamental kale (Brassica oleracea L. var. acephala). Plant Breeding 134:494-500.
  • Zhu, P., Cheng, M., Feng, X., Xiong, Y., Liu, C., Kang, Y. 2016. Mapping of Pi, a gene conferring pink leaf in ornamental kale (Brassica oleracea L. var. acephala DC). Euphytica 207:377-385.
  • Feng, X., Zhang, Y., Wang, H., Tian, Z., Xin, S., Zhu, P. 2021. The dihydroflavonol 4-reductase BoDFR1 drives anthocyanin accumulation in pink-leaved ornamental kale. Theoretical and Applied Genetics 134:159-169.
  • Hayashi, K., Matsumoto, S., Tsukazaki, H., Kondo, T., Kubo, N., Hirai, M. 2010. Mapping of a novel locus regulating anthocyanin pigmentation in Brassica rapa. Breeding Science 60:76-80.
  • Wang, W., Zhang, D., Yu, S., Liu, J., Wang, D., Zhang, F., Yu, Y., Zhao, X., Lu, G., Su, T. 2014. Mapping the BrPur gene for purple leaf color on linkage group A03 of Brassica rapa. Euphytica 199:293-302. https://doi.org/10.1007/s10681-014-1128-y.
  • Zhang, H.C., Liu, C.B., Ren, Y. R., Xuan, S.X., Shen, S.X. 2010. Head cabbage leaf color (purple/green) of genetic analysis and gene location. Scientia Agricultura Sinica 2:346-350.
  • Liu, Xp., Gao, Bz., Han, Fq., Fang, Zy., Yang, Lm., Zhuang, M., Lv, Hh., Liu, Ym., Li, Zs., Cai, Cc., Yu, Hl., Li, Zy., Zhang, Yy. 2017. Genetics and fine mapping of a purple leaf gene, BoPr, in ornamental kale (Brassica oleracea L. var. acephala). BMC Genomics 18:230.
  • Zhou, F., Liu, Y., Feng, X., Zhang, Y., Zhu, P. 2022. Transcriptome analysis of green and white leaf ornamental kale reveals coloration-related genes and pathways. Frontiers in Plant Science 27(13):769121.
  • Sütçü, Ş., Sarıkamış, G. 2024. CRISPR/Cas9 Teknolojisinin Sebze Islahında Kullanımı. Bahçe 53(Özel Sayı 1):115-119.
  • Yuan, K., Zhao, X., Sun, W., Yang, L., Zhang, Y., Wang, Y., Ji, J., Han, F., Fang, Z., Lv, H. 2023. Map-based cloning and CRISPR/Cas9-based editing uncover BoNA1 as the causal gene for the no-anthocyanin-accumulation phenotype in curly kale (Brassica oleracea var. sabellica). Horticultıural Research 10(8):133.
  • Zhou, F., Feng, X., Jiang, A., Zhu, P. 2024. Mutations in the BoPQL2 gene enhance the sensitivity to low temperature and affect the leaf margin coloration in ornamental kale, Scientia Horticulturae 323:112540.
  • Zhang, Y., Feng, X., Liu, Y., Zhou, F., Zhu, P. 2022. A single-base insertion in BoDFR1 results in loss of anthocyanins in green-leaved ornamental kale. Theoretical and Applied Genetics 135:1855-1865.
  • Zhao, Z., Xiao, L., Xu, L., Xing, X., Tang, G., Du, D. 2017. Fine mapping the BjPl1 gene for purple leaf color in B2 of Brassica juncea L. through comparative mapping and whole-genome re-sequencing. Euphytica 213:80.
  • Li, H., Du, Y., Zhang, J., Feng, H., Liu, J., Yang, G., Zhu, Y. 2022. Unraveling the mechanism of purple leaf formation in Brassica napus by integrated metabolome and transcriptome analyses. Frontiers in Plant Science 13:945553.
  • Han, F., Zhang, X., Yang, L., Zhuang, M., Zhang, Y., Liu, Y., Li, Z., Wang, Y., Fang, Z., Ji, J., Lv, H. 2021. Genome-wide characterization and analysis of the anthocyanin biosynthetic genes in Brassica oleracea. Planta 254:92.

Molecular Research on the Leaf color of Ornamental Kale

Year 2025, Volume: 54 Issue: Özel Sayı 1, 513 - 519, 25.03.2025
https://doi.org/10.53471/bahce.1548383

Abstract

Ornamental kale (Brassica oleracea L. var. acephala) is used as a cut flower, pot, and landscape plant due to its strikingly colored and shaped leaves and resistance to cold environmental conditions. Leaf color varies in ornamental kale and increases the potential of the species as an ornamental plant. In general, the outer leaves are in green, while the inner leaves is white, pink, red and purple. Leaf color may vary depending on the developmental stage of the plant and the environmental conditions. Low temperatures lead to the transition of the inner leaves from green to red, pink, or white and are considered as the plant’s adaptation to low temperatures. The major color pigments in plants are chlorophyll, carotenoids, and anthocyanins. Research is continuing to determine the genes and transcription factors that are involved in the biosynthetic pathways of color pigments and control leaf color in ornamental kale. The identification of the genes and their expression profiles are carried out at the transcriptomic level. Most recently, the utilization of CRISPR/Cas9 genome editing enabled to explore the functions of target genes related to leaf color in ornamental kale. Determining the molecular mechanism underlying leaf color is important for breeding studies aimed to develop novel ornamental kale varieties. In the present review, molecular studies on leaf color in ornamental kale is summarized.

References

  • Yanmaz, R., Tuncer, B. 2008. Parklarımızın kış gülleri: Süs lahanaları. Hasad 24(279):90-93.
  • Sarıkamış, G. 2009. Glucosinolates in crucifers and their potential effects against cancer: Review. Canadian Journal of Plant Science 89(5):953-959.
  • He, L., Jiang, H., Li, Y., Zhang, X., Sun, W., Liu, C., Zhao, Z., Yun, C., Li, H., Wang, C. 2024. Sulforaphane-enriched extracts from broccoli exhibit antimicrobial activity against plant pathogens, promising a natural antimicrobial agent for crop protection. Biomolecules 14:352.
  • Kushad, M.M., Cloyd, R., Babadoost, M. 2004. Distribution of glucosinolates in ornamental cabbage and kale cultivars, Scientia Horticulturae 101(3):215-221.
  • Simon, P.W. 1997. Plant pigments for color and nutrition. HortScience 32:12-13.
  • Hughes, N.M., Carpenter, K.L., Cannon, J.G. 2012. Estimating contribution of anthocyanin pigments to osmotic adjustment during winter leaf reddening. Journal of Plant Physiology 170:230-233.
  • Tena, N., Martin, J., Asuero, A.G. 2020. State of the art of anthocyanins: Antioxidant activity, sources, bioavailability, and therapeutic effect in human health. Antioxidants 9:451.
  • Zou, J., Gong, Z., Liu, Z., Ren, J., Feng, H. 2023. Investigation of the key genes associated with anthocyanin accumulation during inner leaf reddening in ornamental kale (Brassica oleracea L. var. acephala). International Journal of Molecular Sciences 24:2837.
  • Zhu, P., Tian, Z., Pan, Z., Feng, X. 2017. Identification and quantification of anthocyanins in different coloured cultivars of ornamental kale (Brassica oleracea L. var. acephala DC). The Journal of Horticultural Science and Biotechnology 93(5):466-473.
  • An, J-P., Wang, X-F., Zhang, X-W., Xu, H-F., Bi, S-Q., You, C-X., Hao, Y-J. 2020. An apple MYB transcription factor regulates cold tolerance and anthocyanin accumulation and undergoes MIEL1-mediated degradation. Plant Biotechnology Journal 18:337-353.
  • Guo, N., Han, S., Zong, M., Wang, G., Zheng, S., Liu, F. 2019. Identification and differential expression analysis of anthocyanin biosynthetic genes in leaf color variants of ornamental kale. BMC Genomics 20:564.
  • Gonzalez, A., Zhao, M., Leavitt, J.M., Lloyd, M.A. 2010. Regulation of the anthocyanin biosynthetic pathway by the TTG1/bHLH/MYB transcriptional complex in Arabidopsis seedlings. Plant Journal 53(5):814-827.
  • Xiangjun, Z., Zhangjun. F., Thannhauser, T.W., Li, L. 2011. Transcriptome analysis of ectopic chloroplast development in green curd cauliflower (Brassica oleracea L. var. botrytis). BMC Plant Biology 11(1):169.
  • Liu, X., Chen, C.Y., Wang, K.C., Luo, M., Tai, R., Yuan, L., Zhao, M., Yang, S., Tian, G., Cui, Y., Hsieh, H-L., Wu, K. 2013. Phytochrome interacting factor3 associates with the histone deacetylase HDA15 in repression of chlorophyll biosynthesis and photosynthesis in etiolated Arabidopsis seedlings. Plant Cell 25(4):1258-1273.
  • Yan, C.H., Peng, L.Y., Zhang, L., Qiu, Z.M. 2020. Fine mapping of a candidate gene for cool-temperature-induced albinism in ornamental kale. BMC Plant Biology 20:460.
  • Tian, H., Fang, L., Zhang, Q., Wang, M., Wang, Y.,Jia, L. 2018. Transcriptome analysis of carotenoid biosynthesis in the Brassica campestris L. subsp. chinensis var. rosularis Tsen. Scientia Horticulturae 235:116-123.
  • Liu, Xp., Zhang, B., Wu, J., Li, Z., Han, F., Fang, Z., Yang, L., Zhuang, M., Lv, M., Liu, Y., Li, Z., Yu, H., Li, X., Zhang, Y. 2020. Pigment variation and transcriptional response of the pigment synthesis pathway in the S2309 triple-color ornamental kale (Brassica oleracea L. var. acephala) line, Genomics 112(3):2658-2665.
  • Xie, L.N. 2003. Genetic analysis of leaf color and shape and mechanism of self-incompatibility of Brassica oleracea var. acephala. Master’s thesis, Northeast Forestry University, Harbin.
  • Wang, Y.S., Liu, Z.Y., Li, Y.F., Zhang, Y., Yang, X.F., Feng, H. 2013. Identification of sequence-related amplified polymorphism markers linked to the red leaf trait in ornamental kale (Brassica oleracea L. var. acephala). Genetics and Molecular Research 12:870-877.
  • Ren, J., Liu, Z., Niu, R., Feng, H. 2015. Mapping of Re, a gene conferring the red leaf trait in ornamental kale (Brassica oleracea L. var. acephala). Plant Breeding 134:494-500.
  • Zhu, P., Cheng, M., Feng, X., Xiong, Y., Liu, C., Kang, Y. 2016. Mapping of Pi, a gene conferring pink leaf in ornamental kale (Brassica oleracea L. var. acephala DC). Euphytica 207:377-385.
  • Feng, X., Zhang, Y., Wang, H., Tian, Z., Xin, S., Zhu, P. 2021. The dihydroflavonol 4-reductase BoDFR1 drives anthocyanin accumulation in pink-leaved ornamental kale. Theoretical and Applied Genetics 134:159-169.
  • Hayashi, K., Matsumoto, S., Tsukazaki, H., Kondo, T., Kubo, N., Hirai, M. 2010. Mapping of a novel locus regulating anthocyanin pigmentation in Brassica rapa. Breeding Science 60:76-80.
  • Wang, W., Zhang, D., Yu, S., Liu, J., Wang, D., Zhang, F., Yu, Y., Zhao, X., Lu, G., Su, T. 2014. Mapping the BrPur gene for purple leaf color on linkage group A03 of Brassica rapa. Euphytica 199:293-302. https://doi.org/10.1007/s10681-014-1128-y.
  • Zhang, H.C., Liu, C.B., Ren, Y. R., Xuan, S.X., Shen, S.X. 2010. Head cabbage leaf color (purple/green) of genetic analysis and gene location. Scientia Agricultura Sinica 2:346-350.
  • Liu, Xp., Gao, Bz., Han, Fq., Fang, Zy., Yang, Lm., Zhuang, M., Lv, Hh., Liu, Ym., Li, Zs., Cai, Cc., Yu, Hl., Li, Zy., Zhang, Yy. 2017. Genetics and fine mapping of a purple leaf gene, BoPr, in ornamental kale (Brassica oleracea L. var. acephala). BMC Genomics 18:230.
  • Zhou, F., Liu, Y., Feng, X., Zhang, Y., Zhu, P. 2022. Transcriptome analysis of green and white leaf ornamental kale reveals coloration-related genes and pathways. Frontiers in Plant Science 27(13):769121.
  • Sütçü, Ş., Sarıkamış, G. 2024. CRISPR/Cas9 Teknolojisinin Sebze Islahında Kullanımı. Bahçe 53(Özel Sayı 1):115-119.
  • Yuan, K., Zhao, X., Sun, W., Yang, L., Zhang, Y., Wang, Y., Ji, J., Han, F., Fang, Z., Lv, H. 2023. Map-based cloning and CRISPR/Cas9-based editing uncover BoNA1 as the causal gene for the no-anthocyanin-accumulation phenotype in curly kale (Brassica oleracea var. sabellica). Horticultıural Research 10(8):133.
  • Zhou, F., Feng, X., Jiang, A., Zhu, P. 2024. Mutations in the BoPQL2 gene enhance the sensitivity to low temperature and affect the leaf margin coloration in ornamental kale, Scientia Horticulturae 323:112540.
  • Zhang, Y., Feng, X., Liu, Y., Zhou, F., Zhu, P. 2022. A single-base insertion in BoDFR1 results in loss of anthocyanins in green-leaved ornamental kale. Theoretical and Applied Genetics 135:1855-1865.
  • Zhao, Z., Xiao, L., Xu, L., Xing, X., Tang, G., Du, D. 2017. Fine mapping the BjPl1 gene for purple leaf color in B2 of Brassica juncea L. through comparative mapping and whole-genome re-sequencing. Euphytica 213:80.
  • Li, H., Du, Y., Zhang, J., Feng, H., Liu, J., Yang, G., Zhu, Y. 2022. Unraveling the mechanism of purple leaf formation in Brassica napus by integrated metabolome and transcriptome analyses. Frontiers in Plant Science 13:945553.
  • Han, F., Zhang, X., Yang, L., Zhuang, M., Zhang, Y., Liu, Y., Li, Z., Wang, Y., Fang, Z., Ji, J., Lv, H. 2021. Genome-wide characterization and analysis of the anthocyanin biosynthetic genes in Brassica oleracea. Planta 254:92.
There are 34 citations in total.

Details

Primary Language Turkish
Subjects Horticultural Production (Other)
Journal Section Derlemeler
Authors

Gölge Sarıkamış 0000-0003-0645-9464

Publication Date March 25, 2025
Submission Date September 11, 2024
Acceptance Date December 11, 2024
Published in Issue Year 2025 Volume: 54 Issue: Özel Sayı 1

Cite

APA Sarıkamış, G. (2025). Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar. Bahçe, 54(Özel Sayı 1), 513-519. https://doi.org/10.53471/bahce.1548383
AMA Sarıkamış G. Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar. Bahçe. March 2025;54(Özel Sayı 1):513-519. doi:10.53471/bahce.1548383
Chicago Sarıkamış, Gölge. “Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar”. Bahçe 54, no. Özel Sayı 1 (March 2025): 513-19. https://doi.org/10.53471/bahce.1548383.
EndNote Sarıkamış G (March 1, 2025) Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar. Bahçe 54 Özel Sayı 1 513–519.
IEEE G. Sarıkamış, “Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar”, Bahçe, vol. 54, no. Özel Sayı 1, pp. 513–519, 2025, doi: 10.53471/bahce.1548383.
ISNAD Sarıkamış, Gölge. “Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar”. Bahçe 54/Özel Sayı 1 (March 2025), 513-519. https://doi.org/10.53471/bahce.1548383.
JAMA Sarıkamış G. Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar. Bahçe. 2025;54:513–519.
MLA Sarıkamış, Gölge. “Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar”. Bahçe, vol. 54, no. Özel Sayı 1, 2025, pp. 513-9, doi:10.53471/bahce.1548383.
Vancouver Sarıkamış G. Süs Lahanalarında Yaprak Rengine Yönelik Moleküler Araştırmalar. Bahçe. 2025;54(Özel Sayı 1):513-9.

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