دو فصلنامه علوم سبزی ها

دو فصلنامه علوم سبزی ها

تجزیه و تحلیل چند متغیره صفات کمی و کیفی در ارقام هیبرید فلفل دلمه‌ای

نوع مقاله : مقاله پژوهشی

نویسنده
استادیار، بخش تحقیقات علوم زراعی- باغی، مرکز تحقیقات و آموزش کشاورزی و منابع طبیعی استان اصفهان، سازمان تحقیقات، آموزش و ترویج کشاورزی، اصفهان، ایران.
چکیده
به ­منظور ارزیابی روابط بین صفات و شناسایی والدین با فواصل ژنتیکی بالا، تعداد 14 هیبرید فلفل دلمه ­ای شامل6 رقم قرمز (کائوبا، نیروین، پلوتونیو، اینسپریشن، ماسیلیا و آیتانا)، 5 رقم زرد (لوموس، باچاتا، هارمونی، تارانتو و اسپرینگ) و 3 رقم نارنجی (مگنو، آرانکیا و پارامو)، به ­صورت طرح کاملاً تصادفی با 3 تکرار در طی سال 1401-1400 در گلخانه تجاری تولید فلفل در اصفهان بررسی شدند. صفات ارتفاع گیاه، طول، قطر و وزن میوه، شاخص شکل، طول دمگل، ضخامت گوشت میوه، وزن صد دانه، تعداد دانه در میوه، مواد جامد محلول و عملکرد میوه در بوته اندازه­ گیری شدند. نتایج بررسی همبستگی بین صفات نشان داد که عملکرد میوه در بوته با صفات طول میوه (r =0/402)، قطر میوه (r=0/593)، وزن میوه (r=0/816)، ضخامت گوشت میوه (r=0/291) و وزن صد دانه (r=0/41) همبستگی مثبت و معنی­دار داشت. براساس نتایج تجزیه خوشه ­ای، هیبریدها در چهار گروه مجزا قرار گرفتند. هیبریدها در گروه دو پایین­ترین سطح ویژگی ­های کمی و دو هیبرید قرمز کائوبا و پلوتونیو در گروه سه بیشترین عملکرد و خصوصیات کمی را دارا بودند. پراکندگی و توزیع رنگ ­های مختلف فلفل دلمه ­ای در گروه‌های مجزا، فاصله ژنتیکی بالا بین هیبریدها را تأیید می­ کند. در تجزیه به مؤلفه‌های اصلی، همبستگی صفات مورد بررسی با مؤلفه‌ها نشان داد مؤلفه اول با مقدار 39/67 درصد به صفت عملکرد میوه و مؤلفه دوم با مقدار 18/24درصد به صفت کیفی میوه (مواد جامد محلول) اختصاص دارد. از نتایج بدست آمده می­ توان در ایجاد جمعیت­ های پایه اصلاحی برای ارقام فلفل دلمه­ ای بهره برداری نمود.
کلیدواژه‌ها

عنوان مقاله English

Multivariate analysis of qualitative and quantitative traits in bell pepper hybrid cultivars

نویسنده English

Zahra Abbasi
Assistant Professor, Horticulture Crops Research Department, Isfahan Agricultural and Natural Resources Research and Education Center, (AREEO), Isfahan,
چکیده English

Extended Abstract
 

Introduction: Pepper (Capsicum annuum), with all unique flavors and varieties, maintains high consumption rates and economic value. The awareness of sustainable products among consumers has increased interest for bioactive constituents and plant extracts in the pharmaceutical, cosmeceutical and food industries. Pepper products containing capsaicinoids, carotenoids, and oleoresins are crucial in pharmaceutical, nutricosmetics and cosmeceuticals owing to their analgesic and antioxidant properties and ease of topical and oral administrations. A breeding program includes several activities such as maintaining a germplasm bank, evaluating genetic diversity, selecting superior genotypes, hybridization, and evaluating segregated populations. The information from genetic diversity is also helpful for conservation, evaluation, utilization of genetic resources and for determining the uniqueness and distinctness of genotypes. This study was accomplished to assess the relationships between different traits and identify parents with high genetic distances.
Materials and Methods: In this project, 14 bell pepper hybrids including six red varieties (Caoba, Neirvin, Plutonio, Insprision, Masilia, and Iitana), five yellow varieties (Lumus, Bachata, Harmony, Taranto, and Spring) and three orange varieties (Magno, Arankia, and Paramo), were investigated in a completely random design with three replications in the greenhouse in Isfahan. Seedlings were transplanted on 2nd August 2021; each plot contained four plants of each hybrid, 30 cm apart standard; cultural practices recommended for growing bell pepper crops. About five months after planting, the plant height was measured in centimeters. Average fruit yield per plant was recorded for six harvest times. After fruit harvesting, for each genotype, data were recorded on five ripe fruits randomly taken plants from each plot; quantitative and qualitative traits were measured as follows: fruit length and diameter, peduncle length, and fruit pericarp thickness were recorded with a digital caliper. The shape index trait was obtained from the ratio of the fruit length to the diameter. The total soluble solids were measured by a refractometer. Finally, the average was calculated to record the mean value in each replication for all the characters under study. Analysis of variance was done to determine differences among the genotypes. Mean separation was done using the LSD test at p-values < 0.05. Data for each genotype were averaged across the replications and then used for correlation, cluster and principal component analysis (PCA). The data were analyzed by software SAS V.9.4 and SPSS 27.0.1.
Results and Discussion: The results of variance analysis showed significant deference among hybrids for all quantitative and qualitative traits. The most variation was for fruit size traits (diameter and shape index). The orthogonal comparison for pepper colors showed significant differences in fruit length, diameter, shape index, and soluble solids. The results of trait correlation coefficients showed that the fruit yield per plant had a strong positive correlation with the fruit diameter and fruit weight traits, and there was a positive and significant correlation with the traits of fruit length, fruit pericarp thickness, and hundred seed weight. Based on cluster analysis results, the hybrids were placed in four separate groups. The first group hybrids include five hybrids: Aranika (Orange), Paramo (Orange), Spring book (yellow), Nirvin (Red), and Masilia (Red) with medium fruit yield. The second group with three hybrids: Magno (Orange), Pachata (Yellow), and Aitana (Red), showed the lowest quantity characters such as low fruit weight, shape index, fruit pericarp thickness, peduncle length, and meager fruit yield. Contrary to this, the third group with two hybrids Caoba (Red) and Plutonio (Red), had the highest quantity characters such as high fruit weight, neck diameter, hundred seed weight, and very high fruit yield. The dispersion and distribution of different bell pepper colors in separate groups confirm the high genetic distance between the hybrids. The first two components justified 39.67 and 18.24% of total variance principal component analysis showed that the first principal component (PC1) was related to fruit yield attribute. The second principal component (PC2) had positive correlation with qualitative attribute of the fruit (soluble solids).
Conclusion: The results of the current study were able to reveal the high diversity within the evaluated hybrids and partition them into meaningful groups. This can also be helpful for informed pepper breeding and improvement programs. High genetic variation between bell pepper hybrids and within each color for most of the studied traits can be effective in the breeding programs for pure line production.

کلیدواژه‌ها English

Cluster analysis
Fruit yield in the plant
PCA analysis
Quantity and quality traits
Asghari, M., Kalantar, M., Davod Hassanpanah, D. & Dehghani Zahedani, M. (2022). Genetic varieties of the obtained hybrids from the potato (Solanum tuberosum L.) tuber intersections in the spring using the factor and cluster analysis. Journal of Vegetables Science, 10(2), 163-179. doi:10.22034/iuvs.2021.522522.1142 
Aslani, L., Mobli, M. & Keramat, J. (2015). Comparison of antioxidant activity and quality characteristics of the fruit of four greenhouse bell pepper cultivars. Journal of Crop Production and Processing, 5(17), 149-157. (In Farsi)
doi:10.1080/14620316.2016.1175234.
Baenas, N., Belovic, M., Ilic, N., Moreno, D. A. & García-Viguera, C. (2019). Industrial use of pepper (Capsicum annuum L.) derived products: Technological benefits and biological advantages. Food Chemistry, 274, 872–885.doi:10.1016/j.foodchem.2018.09.047   
Bosland, P. W., Votava, E. J. & Votava, E. M. (2012). Peppers: vegetable and spice capsicums. 22, Cabi. 230pp. 
doi:10.1079/9781845938253.0000 
Carvalho, S. I. C., Bianchetti, L. B., Ragassi, C. F., Ribeiro, C. S. C., Reifschneider, F. J. B….& Buso G. S. C. (2017). Genetic variability of a Brazilian Capsicum frutescence germplasm collection using morphological characteristics and SSR markers. Genetic Molecular Research, 16(3), gmr16039689. doi:10.4238/gmr16039689         
Christov, N. K., Tsonev, S., Todorova, V. & Todorovska, E. G. (2021). Genetic diversity and population structure analysis–a prerequisite for constructing a mini core collection of Balkan Capsicum annuum germplasm. Biotechnology and Biotechnological Equipment, 35(1), 1010-1023. doi:10.1080/13102818.2021.1946428.    
Fateh, M. & Barzegar, T. (2019). The effect of spraying of naphthalene acetic acid on growth, (yield and fruit quality of bell pepper variety California Wonder. Journal of Vegetables Science, 35), 1-10.
doi:10.22034/iuvs.2019.36292
Feher, W. R. (1987). Principles of Cultivar Development. Macmillan Publidhing Company, Newyork, 42pp.
Ferreira, K. T. C., Rêgo, E. R., Rêgo, M. M., Fortunato, F. L. G., Nascimento, N. F. F. & De Lima, J. A. M. (2015). Combining ability for morpho-agronomic traits in ornamental pepper. Acta Horticulturae, 1087, 187–194.  doi:10.17660/actahortic.205.1087.22 
Fite, G. L. (2003). Studies on genetic variability, inheritance and heterosis in pepper (Capsicum annuum L.) Doctoral dissertation, University of the Free State.
Fortunato, F. L. G., Rêgo, E. R., Rêgo, M. M., Pereira dos Santos, C. A. & Gonçalves de Carvalho, M. (2015). Heritability and genetic parameters for size-related traits in ornamental pepper (Capsicum annuum L.). Acta Horticulturae, (ISHS), 1087, 201–206. doi:10.17660/actahortic.2015.1087.24 
Ghasemnezhad, M., Sherafati, M. & Payvast, G. A. (2011). Variation in phenolic compounds, ascorbic acid and antioxidant activity of five coloured bell pepper (Capsicum annum) fruits at two different harvest times. Journal of Functional Foods 3, 44-49. doi:10.1016/j.jff.2011.02.02      
Jarret, R. L., Barboza, G. E., Costa Batista, F. R. D., Berke, T., Chou, Y.-Y., Hulse-Kemp, A., Ochoa-Alejo, N., Tripodi, P., Veres, A. & Garcia, C. C. (2019). Capsicum—An abbreviated compendium. Journal of the American Society for Horticultural Science, 144, 3–22. doi:10.21273/jashs04446-18    
Khambanonda, I. (1950). Quantitative inheritance of fruit size in red pepper (Capsicum annuum L.). Proceedings of the American Association for the Advancement of Science, 89, 443-448. 
Liu, Y., Tikunov, Y., Schouten, R. E., Marcelis, L. F., Visser, R. G. & Bovy, A. (2018). Anthocyanin biosynthesis and degradation mechanisms in Solanaceous vegetables: a review. Frontiers in Chemistry, 6, 52. 10.3389/fchem.2018.00052. doi:10.3389/fchem.2018.00052    
McArdle, R. N. & Bouwkamp, J. C. (1983). Inheritance of several fruit tharacters in Capsicum annuum L. Journal of Heredity, 74(2), 125-127.  doi:10.1093/oxfordjournals.jhered.a109738  
Nankar, A. N., Todorova, V., Tringovska, I., Pasev, G., Radeva-Ivanova, V., Ivanova, V. & Kostova, D. (2020). A step towards Balkan Capsicum annuum L. core collection: Phenotypic and biochemical characterization of 180 accessions for agronomic, fruit quality, and virus resistance traits. PLoS One, 15(8), e0237741. doi:10.1371/journal.pone.0237741   
Odland, M. L. (1948). Inheritance studies in the pepper. Capsicum frulesctns. University of Minnesota. Agricultural Experiment Station, Bulletin, 179. 
Patil, S. S. A. & Salimath, P. M. (2008). Estimation of gene effects for fruit yield and its components in chili (Capsicum annuum L.). Journal of Agriculture Science, 21(2), 181–183. 
Sampaio, A. P. L., Aguilera, J. G., Mendes, A. M. D. S., Argentel-Martínez, L., Zuffo, A. M. & Teodoro, P. E. (2023). The role of the genetic diversity of Capsicum spp. in the conservation of the species: Qualitative and quantitative characterization. Ciência e Agrotecnologia, 47. doi: 10.1590/1413-7054202347009122   
Pereira-Dias L., Fita A., Vilanova S., Sanchez-Lopez E. & Rodriguez-Burruezo A. (2020). Phenomics of elite heirlooms of peppers (Capsicum annum L.) from the Spanish center of diversity: Conventional and high-throughput digital tools towards varietal typification. Science of Horticulture, (Amsterdam). 265, 109245.
doi:10.1016/j.scienta.2020.109245        
Peterson, P. A. (1959). Linkage of fruit shape and color genes in Capsicum. Genetics, 44, 407-419.
Rêgo, E. R., Rêgo, M. M. & Finger, F. L. (2015). Methodological basis and advances for ornamental pepper breeding program in Brazil. Acta Horticulturae, 1087, 309–314. doi:10.17660/actahortic.2015.1087.39 
Rylski, I. (1973). Effect of night temperature on shape and size of sweet pepper (Capsicum annuum L.). Journal of the American Society for Horticultural Science, 98(2), 149-152.
Schlichting, C. D. (1986). The evolution of phenotypic plasticity in plants. Annual review of ecology and systematics, 667-693.
Sharma, A., Kumar, M., Dogra, R. K., Kumar, N., Kumari, R. & Kansal, S. (2019). Estimation of genetic variability in bell pepper (Capsicum annuum L. var. grossum). International Journal of Chemical Studies, 7(3), 10-13.
Tripodi, P., Schiavi, M. & Lo Scalzo, R. (2021). Multi-scale evaluation on two locations and digital fruit imaging highlight morpho-agronomic performances and antioxidant properties in chilli pepper hybrids. Agronomy, 11(4), 805- 817. doi:10.3390/agronomy11040805.  
Tsonev, S., Todorova, V., Grozeva, S., Popova, T. & Todorovska, E. G. (2017). Evaluation of diversity in Bulgarian pepper cultivars by agronomical traits and ISSR markers. Genetika, 49(2), 647–662. doi:10.2298/gensr1702647t  
Yun, N., Lu, C., Sun, T., Xu, B., Song, Y., Zong, Z.& Gu, Q. (2023). High sensitivity detection of capsaicin in red pepper oil based on reduced graphene oxide enhanced by β-cyclodextrin. Food Analytical Methods, 16(2), 318-329. doi: 10.1007/s12161-022-02415-y.  
Zewdie Y, & Bosland P. (2000) Capsaicinoid inheritance in an interspecific hybridization of Capsicum annuum x C chinense. Journal of the American Society for Horticultural Science, 125(4), 448–45. doi:10.21273/jashs.125.4.448.   
دوره 8، شماره 15 - شماره پیاپی 1
دو فصلنامه علوم سبزی ها- بهار و تابستان 1403
تیر 1403
صفحه 153-168

  • تاریخ دریافت 31 اردیبهشت 1402
  • تاریخ بازنگری 30 مرداد 1402
  • تاریخ پذیرش 04 شهریور 1402