درصد هموزیگوسیتی در مناطق پرورش زنبور عسل استان سیستان و بلوچستان و تأثیر آن بر میزان تولید عسل

نوع مقاله : مقاله پژوهشی

نویسندگان

گروه علوم دامی، دانشکده کشاورزی، دانشگاه زابل، زابل، ایران

چکیده

با توجه به اهمیّت هموزیگوسیتی آلل‌های جنسی بر عملکرد و تولید عسل، هدف از مطالعه حاضر ارزیابی میزان هموزیگوسیتی آلل های جنسی در زنبورستان‌های استان سیستان و بلوچستان بر اساس مراکز تجمع زنبورستان‌ها و بر مبنای پتانسیل زنبورداری، تعداد کلنی و زنبوردار ارزیابی شد. بدین منظور از مراکز تجمع زنبورستان‌ در مناطق مختلف استان،کلنی‌های دارای ملکه‌های هم سن و دارای جمعیّت یکسان ‌(ترجیحاً بیشتر از هفت شان جمعیّت)‌ به صورت تصادفی انتخاب و مورد مطالعات میدانی قرار گرفتند. تعداد 200 کلنی زنبور عسل (از چهار شهرستان، هر شهرستان 5 بخش و از هر بخش 10 کلنی) انتخاب شدند. صفات تعداد حجرات خالی و میزان تولید عسل در پایان دوره 6 ماهه اندازه‌گیری شدند. بر اساس تعداد حجرات خالی درصد هموزیگوسیتی آلل‌های جنسی و تعداد آلل هموزیگوت محاسبه شد. تجزیه و تحلیل داده‌ها بر اساس طرح آشیانه‌ای با دو عامل شهرستان و منطقه انجام گرفت و آثار هموزیگوسیتی بر عملکرد تولید عسل از تجزیه کواریانس و تجزیه رگرسیون استفاده شد. نتایج نشان داد کمترین ضریب هموزیگوسیتی (89/2 درصد)‌ در بخش اسماعیل آباد، شهرستان خاش مشاهده شد. همچنین شهرستان‌دلگان بیشترین میزان تولید ‌عسل ‌(07/12‌ کیلوگرم به ازای هر‌کندو)‌ را به خود اختصاص داد، ‌امّا میزان عسل‌ تولیدی در بخش حبیب آباد، شهرستان تفتان نسبت به سایر  بخش‌ها در بالاترین مقدار به میزان‌79/18‌ کیلوگرم به ازای هر کندو بود. بالاتر بودن میزان تولید عسل در بخش حبیب آباد، شهرستان تفتان می‌تواند به دلیل شرایط منطقه‌ای مناسب‌تر و یا به دلیل تغذیه بهتر کلنی‌های زنبورعسل در این بخش نسبت به سایر بخش‌ها باشد. در مطالعه حاضر همبستگی بین درصد هموزیگوسیتی و صفت تولید عسل غیرمعنی‌دار بود. لذا آثار نامطلوب هموزیگوسیتی بر عملکرد زنبور عسل و کاهش اندازه جمعیت کلنی‌ها مشاهده نشد، لذا حکایت از وضعیت مطلوب زنبورداری و میزان تنوع بالا در کلنی‌های زنبور عسل منطقه سیستان و بلوچستان است و برنامه‌های بهنژادی با انتخاب جهت تولید ملکه‌های با عملکرد بالا و صفات مطلوب دیگر را میسر می‌سازد.

کلیدواژه‌ها

موضوعات


عنوان مقاله [English]

Homozygosity percentage in beekeeping areas of Sistan and Baluchistan province and its effect on honey production

نویسندگان [English]

  • Zohreh Mehraban
  • Kamal Shojaian
  • Gholam Reza Dashab
  • Masoud Rezvan
Department of Animal Science, Faculty of Agriculture, University of Zabol, Zabol
چکیده [English]

Considering the importance of homozygosity of sex alleles on yield and honey production, the present study aimed to evaluate the level of homozygosity in beekeepers of Sistan and Baluchistan province based on the centers of apiaries and based on beekeeping potential, number of colonies and beekeepers. For this purpose, colonies with queens of the same age and the same population (preferably more than seven times the population) were randomly selected from the centers of beehives in different regions of the province and subjected to field studies. A total of 200 honey bee colonies (from four counties, 5 districts in each district 10 colonies) were selected. The traits of the number of empty cells and the amount of honey production were measured at the end of the 6 months. Based on the number of empty cells, the percentage of homozygosity of sex alleles and the number of homozygous alleles were calculated. Data analysis was performed using a nested design with two factors: county and district. The effects of homozygosity on honey production performance were analyzed using analysis of covariance and regression analysis. The results showed that the lowest hemozygosity coefficient (2.89%) was observed in the Ismail-Abad district, Khash city. Additionally, Delgan city produced the highest amount of honey (12.07 kg per hive), but the amount of honey produced in Habib Abad district, Taftan city, was the highest at 18.79 kg per hive, compared to other districts. The higher amount of honey production in the Habib-Abad sector, Taftan city, may be due to more suitable regional conditions or better nutrition of honey beehives in this sector compared to other industries. In the present study, the correlation between the percentage of homozygosity and the honey production trait was insignificant. Therefore, the adverse effects of homozygosity on honey bee performance and reduction in colony population size were not observed, thus indicating the favorable state of beekeeping and high diversity in honey bee colonies in the Sistan and Baluchistan province, and enabling breeding programs by selecting for the production of queens with high performance and other desirable traits.

کلیدواژه‌ها [English]

  • Complementary Sex Determiner gene
  • Honey production
  • Honey bee
  • Homozygosity of sexual alleles
  • Sistan and Baluchistan

Extended Abstract

Introduction

     Honey bees play an important role in meeting the needs of human societies. Their primary role is pollination, and their products, such as honey, pollen, royal jelly and wax, are also important. However, the evolution of human societies, the destruction of natural habitats, and some management problems have caused the population of this insect to decrease. One of these management issues is an increase in homozygosity of sexual alleles, which has led to a reduction in the number of sexual alleles and an increase in homozygosity, as well as its associated effects and consequences, including reduced adaptation power, decreased fertility and reduced production. The purpose of this study is therefore to investigate the level of homozygosity in bee colonies in areas with a high density of beekeepers in Sistan and Baluchistan province, and its impact on honey production. Materials and methods     The study was conducted at the level of apiaries in the cities with the highest concentration of honey bee breeding in the Sistan and Baluchistan provinces (Delgan, Khash, Taftan and Iran-shahr) during the spring and summer of 2024. Two hundred hives from four cities (Delgan, Khash, Taftan and Iran-shahr), five apiaries from each region, ten hives from each apiary and three hives from each hive were randomly selected and subjected to field studies. For this purpose, brown-colored healthy pomace was given to each of the studied colonies. Three days later, the state of queen spawning was evaluated, and the desired queens were coded once it was confirmed that the queen had spawned. Twelve days after the queen hatched, the combs in question were removed from the hive. Evaluation of the empty cells was performed using a template in six areas of each comb (three from each side), and the number of empty cells was counted and recorded. 300 cells from each side were examined, making a total of 600 cells from each comb and 1,800 cells from each hive. The homozygosity of sex alleles was calculated using Ruttner's (1988) and Page and Laidlow's (1985) instructions. To count the empty cells in each hive, three frames containing closed-headed babies (pupae) were removed and the number of empty cells among the full cells was counted by placing a template in the pupal area. The average number of empty cells indicates the average homozygosity of each sex allele. The ratio 100/s-100 was used to estimate the number of homozygous sex alleles, where s is the average percentage of vitality of babies due to the action of the homozygosity of sex alleles. During the next stage of the honey harvesting season, the weight of the harvested honey was calculated and recorded based on the difference in weight of each hive before and after honey extraction. Finally, after taking the measurements, the data were analyzed using a nested design in SAS software version 9.4. To check the effect of the homozygosity coefficient on honey yield, regression analysis was used. In this model, honey production was considered the dependent variable and the homozygosity percentage the auxiliary variable. Results    In apiaries across the province, the average homozygosity and number of homozygous alleles were 3.46% and 32.81, respectively, while honey production was 10.75 kg. While the percentage of homozygosity in different cities within the province did not differ significantly (P>0.05), significant differences were observed within each city's departments (P<0.05). The range of changes in the homozygosity coefficient in different cities was between 3.31% and 3.57%, indicating a low homozygosity percentage. The average honey production per hive in the cities of the province was between 9.56 and 12.07 kg, showing a statistically significant difference (P < 0.05). Due to the low homozygosity percentage, it is expected that the number of sexual alleles will be high. The average number of alleles in different cities was between 31.32 and 35.8, with the highest number belonging to Taftan city, which showed the lowest homozygosity coefficient. The variation in the coefficient of hemozygosity in different parts of each city was greater, ranging from 2.06% to 5.08%. Average honey production ranged from 6.13 to 18.79 kg, indicating a wide variation in production across the province. The variation in the number of alleles was also significant, ranging from 20.39 to 50.2. The highest number of alleles was found in different parts of Taftan city, which had the lowest coefficient of homozygosity and the highest average honey production. Correlation analysis showed no significant correlation between honey production performance and percentage of homozygosity (P<0.05).

 

Conclusions

In the present study, the correlation between the percentage of homozygosity and the honey production trait was insignificant. Therefore, the adverse effects of homozygosity on honey bee performance and reduction in colony population size were not observed, thus indicating the favorable state of beekeeping and high diversity in honey bee colonies in the Sistan and Baluchistan province, and enabling breeding programs by selecting for the production of queens with high performance and other desirable traits.

 Key words: Complementary Sex Determiner gene, Honey production, Honey bee, Homozygosity of sexual alleles, Sistan and Baluchistan

Author Contributions

Methodology, Z. M., G. R. D. and K. S.; software, G. R. D. and Z. M.; formal analysis, G. R. D. and Z. M.; writing—original draft preparation, Z. M., G. R. D., K. S. and M. R.; writing—review and editing, Z. M., G. R. D., K. S. and M. R.; supervision, G. R. D., K. S. All authors have read and agreed to the published version of the manuscript.

Data Availability Statement

Data available on request from the authors.

Acknowledgements

The authors would like to thank all participants of the present study.

Ethical consideration

The study was approved by the Ethics Committee of the University of Zabol (Ethical cod: IR-UOZ-4398). The authors avoided data fabrication, falsification, plagiarism, and misconduct.

Conflict of interest

The author declares no conflict of interest.

منابع

اسعدی دیزجی، ا.، صیامی، ک. و کاووسی، ا. (1387). بررسی همخونی در کلنی­های زنبورعسل شهرستان میانه. مجله دانش نوین کشاورزی، 4(11): صفحات 11-15.
بصیری، م. (1385). اصول اصلاح نژاد زنبورعسل. انتشارات موسسه آموزش عالی­علمی­کاربردی جهاد کشاورزی
رحیمی، ع. (1401). هموزیگوسیتی اللهای جنسی در کلنی های زنبورعسل. انتشارات نشر آموزش کشاورزی، صفحات 29-22.
زاهدی بناب، ح. (1401). برآورد میزان همخونی و هموزیگوتی آلل های جنسی در کلنی های نسل 18 طرح اصلاح نژادی زنبور عسل. پایان­نامه کارشناسی ارشد. دانشکده کشاورزی، دانشگاه زنجان
زرین، ف. (1379). بررسی میزان هموزیگوسیتی آللهای جنسی در توده زنبور عسل استان های تهران، اصفهان، مرکزی، قزوین (طرح جامع) و رابطه آن با تولید زنبور عسل. پایان­نامه کارشناسی ارشد، مرکز آموزش علمی امام حسین
سپهری­، ر.­ (1382). برآورد­ تعداد ­آللهای جنسی ­در­کلنی­های­ زنبورعسل ­استانهای­ مرکزی ­ایران و ­رابطه آن­ با میزان جمعیت و ­تولید عسل. پایان نامه­کارشناسی ­ارشد، دانشکده کشاورزی، دانشگاه زنجان .
صادقی، م. ت. (1377). مطالعه ­درصد­ خویشاوندی ­در ­زنبورهای­ عسل ­استان خوزستان. پایان نامه ­کارشناسی ارشد­ دانشگاه تبریز.
فرهنگ­دوست، آ.، ­غفاری، م.­، ­­رحیمی،ع. و هاشمی، ع. (1401)­­. ارزیابی­ هموزیگوسیتی ­آلل­های­جنسی و بررسی ارتباط آن با صفات جنسی، تولید­عسل­ و ­جمعیت بالغین ­در­کلنی­های استان­های آذربایجان شرقی و اردبیل. مجله پژوهشهای جانوری (مجله زیست شناسی ایران)، 35(2): 20-29.
مخبر، م. و پری­چهره، ش. (1400). معرفی جایگاه csd و نقش آن در تعیین جنسیت در زنبورعسل (Apis mellifera). فصلنامه علمی ترویجی علوم و فنون زنبور عسل، 12(23): 33-26.
میرزایی، ح.، پور­اصغر، ج.، طهماسبی، غ.، ­مقدم، م.­ و عراقی، م. (1384)­. تعیین­ میانگین­ درصد هموزیگوتی آلل های­جنسی ­و ­بررسی­ روابط­ آن با ­تعداد مهاجرت و تولید عسل­کلنی­های زنبورعسل ­استان ­آذربایجان­ شرقی. پژوهش و سازندگی،­ 66: صفحات ­59-53.
یوسفی، ج.، مخبر، م.، هاشمی.، ع. و رحیمی، ع. ا. (1400). بررسی هموزیگوسیتی آللهای جنسی و رابطه آن با صفات میزان جمعیت و تولید عسل در جمعیت­های زنبورعسل (Apis mellifera meda) استان­های آذربایجان غربی و کردستان. پژوهشهای تولیدات دامی، 12(32): 139-131.
REFERENCES
Asaadi Dizaji, A. A. F., Siami, K. & Kavousi, O. (2008). Study of hemozygosity in apiaries of Miyaneh region, Iran. Agroecology Journal, 4(11), 11-15. https://sid.ir/paper/166711/en (In Persian)
Basiri, M. (2006). Principles of honey bee breeding. Publications of the institute of higher-scientific-applied Agricultural Jihad. (In Persian)
Belsky, ­J. ­and­ Joshi,­ N. ­K. (2019). Impact of biotic and abiotic stressors on managed and feral bees. Insects, 10(8): 233. https://doi.org/10.3390/insects10080233
Beye, M.­ (2004).­The dice of fate: the csd gene and how its allelic composition regulates sexual development in the honey bee, Apis mellifera. BioEssays, 26(10):­1131-1139. doi: 10.1002/bies.20098.
Bilodeau L., Avalos A., Danka, R. G. (2020). Genetic diversity of the complementary sex-determiner (csd ) gene in two closed breeding stocks of Varroa -resistant honey bees. Apidologie, https://doi.org/10.1007/s13592-020-00790-1.
Charlesworth,­ D. (2008).­ Changed sex determination in honey bees current biology. Evolutionary Genetics, 2: 610– 612. https://doi.org/10.1016/j.cub.2008.06.004
Cook, J., Crozier, R. H. (1995). Sex determination and population biology in the Hymenoptera. Trends in Ecology& Evolution, 10(7): 281-286. https://doi.org/10.1016/0169-5347(95)90011-X
Farhangdoost, A., Ghaffari, M., Rahimi, A. And Hashemi, A. (2022). Evaluation of sex alleles Homozygosity and study on their relationships with number of sex alleles, honey production and adult’s population of honeybee colonies (Apis mellifera meda) in East Azerbaijan and Ardebil provinces. Animal Research Journal (Iranian Biology Journal), 35(2): 101-112. (In Persian) https://dorl.net/dor/20.1001.1.23832614.1401.35.2.5.1 (In Persian)
Khalifa,­S. A., Elshafiey, E. H., Shetaia, A. A., El-Wahed, A. A. A., Algethami, A.­ F., Musharraf, S. G., Ajmi, M. F., Zhao, C., Masry, S.­ H. and Abdel-Daim,­ M.­ M.­ (2021). Overview of bee pollination and its economic value for crop production. Insects, 12(8): 688. doi: 10.3390/insects12080688
Lechner, S., Ferretti L., Schoning C., Kinuthia W., Willemsen D., Hasselmann M. (2014) Nucleotide variability at its limit? Insights into the number and evolutionary dynamics of the sex-determining specificities of the honey bee Apis mellifera. Mol. Biol. Evol., 31 , 272-287. https://doi.org/10.1093 /molbev/mst207.
Lilia, D. G., Rinderer, T. E., Delatter, G. T., Stelzer, J. N., Beaman L., Kuznetsor, V. (2002). Resistance to Acarapis woodi by honey bees from far-eastern Russia. Apidologie, 33(4): 411-415. DOI: 10.1051/apido:2002031
Mirzaee, H., Tahmasebi, G. H. H., Poorasghar, J., Moghadam, M. and Araghi, M. (2005). Determination­ of sex alleles homozygosity and study on their relation ships with migration and production ofhoneybee colonies (Apis Mellifera) in east Azerbayjan province. Pajohesh-Va-Sazandegi, pp: 53-59 (In Persian).
Mishra, R. C. and Kumar, Y. (1992). Breeding for resistance to Varroa destructor in North America. Apidologie, 32, PP: 381- 39. Doi: 10.1051/apido/2010015
Mo, E. Y. Y., Utaipanon, P., Bates, T. and et al. (2024). Genetic diversity of Apis mellifera complementary sex determiner (csd) in four Australian breeding populations. Apidologie, 55, 36. https://doi.org/10.1007/s13592-024-01076-6
Mokhber, M. and Parichehreh, S. (2021). An introduction to the csd locus and it's role in sex determining in the honeybee (Apis mellifera). Bee Science and Techniques, 12(23): 26-33. (In Persian) DOI: 10.22092/HBSJ.2022.127230
Moritz, R. F. A. (1986). The original of hemozygosity depression in honey bees. Bee World, 67: 157-163. https://doi.org/10.1080/0005772X.1986.11098894
Oldroyd,­ B. P. and Wongsiri, S. (2009). Asian honey bees: biology, conservation, and human interactions. Harvard University Press . https://doi.org/10.2307/j.ctv2drhcfb.1
Page, R. E., Laidlaw, H. H. and Erickson, E. H. (1985). Closed population honey bee breeding. 4. The distribution of size alleles with top crossing. Journal of Apicultural Research, 24: 38-42. DOI: 10.1080/0005772X.1985.11098826
Paolillo, G., De Iorio, M. G., Filipe, J. F. S., Riva, F., Stella, A., Gandini, G., Pagnacco, G., Lazzari, B., Minozzi, G. (2022). Analysis of Complementary Sex-Determiner (csd) allele diversity in different honeybee subspecies from Italy based on NGS data. Genes, 13, 991. https://doi.org/10.3390/ genes13060991.
Phiri, B.J., Fèvre, D. & Hidano, A. (2022). Uptrend in global managed honey bee colonies and production based on a six-decade viewpoint, 1961–2017. Sci Rep., 12: 21298. https://doi.org/10.1038/s41598-022-25290-3
Rahimi, A. (2022). Homozygosity of sexual alleles in honey bee colonies. Agricultural Education Publishing House, pages 22-29. (In Persian)
Posada-Florez, F., Lamas, Z.S., Hawthorne, D.J.  and et al. (2021). Pupal cannibalism by worker honey bees contributes to the spread of deformed wing virus. Sci. Rep., 11, 8989. https://doi.org/10.1038/s41598-021-88649-y.
Rahimi, A., Asadi, M. and Nabati, K. (2010). Sex alleles homozygosity percent of honey bee colonies (Apis mellifera meda) (Hymenoptera: Apidae) in Kordestan province (west of Iran). Nature Montenegro, 10: 183-185. Doi: 20.1001.1.23832614.1401.35.2.5.1
Rinderer,­T. E.,­ Harris, H.,­ Hunt,­ G.­ J. and De Guzman,­ L.­ I. (2010). Breeding for resistance to Varroa destructor in North America. Apidologie, 32: 381- 394. https://doi.org/10.1051/apido/2010015
Ruttner, F.­ (1988). Breeding techniques and selection for breeding of the honey bee. British Isle Bee Breeders Assn.
Sadeghi, M. T. (1998). The study of hemozygosity percentage in honey bees of Khuzestan province. Master's thesis, Tabriz University. (In Persian)
SAS Institute Inc. (2013). SAS® 9.4 Statements: Reference.­Cary, NC: SAS Institute. Inc.
Sepehri, R., Tahmasebi, G. H. H.  and Jalali-Zonouz, M. J. (2007). Estimating the number of sex alleles in honeybee colonies in central region of Iran and it’s relationship with stored pollen, colony population and honey yield. Journal of Science and Technology of Agriculture and Natural Resourses, 11(41B): 321-331 (In Persian). Dor: 20.1001.1.22518517.1386.11.41.26.3
Tarpy,­ D. ­R. ­and ­Page,­ R.­ E.­ (2002). ­Sex determination and the evolution of polyandry in honey bees (Apis mellifera). Behavioral Ecology and Sociobiology, 52: 143-150. DOI: 10.1007/s00265-002-0498-7
Wallberg, A., Han, F., Wellhagen, G. and Dahle, B. (2014). Worldwide survey of genome sequence variation provides insight into the evolutionary history of the honeybee Apis mellifera. Nature Genetics, 46:1081–1088. https://doi.org/10.1038/ng.3077
Woyke, J. (1980). Effect of sex allele homo-heterozygosity on honeybee colony populations and on their honey production I. Favourable development conditions and unrestricted queens. Journal of Apicultural Research, 19(1), 51–63. https://doi.org/10.1080/00218839.1980.11099997
Woyke, J. (1999). Evidence and action of cannibalism substance in Apis Cerana. Journal of Apicultural Research, 10: 6-16. https://doi.org/10.1080/00218839.1980.11099992
Woyke, J. (2015). What happens to diploid drone larvae in a honey bee colony. Journal of Apicultural Research, 3: 73 –76. https://doi.org/10.1080/00218839.1963.11100063
Woyke, ­J. and Adamska,­ Z. (1973). The biparental origin of adult honeybee drones proved by mutant genes. Journal of Apiculture Research, 11: 41-49. https://doi.org/10.1080/00218839.1972.11099698
Yousefi,­ J., ­Mokhber,­ M., ­Hashemi,­ A., ­Rahimi, ­A.­ (2021).­ Homozygosity of Sex Determination Locus and It’s Correlation with Population and Honey Production of Honeybee (Apis­mellifera Meda) Populations in West-Azerbaijan and Kurdistan Provinces. Research On Animal Production,12(32): 131-139. (In Persian) ‎ Doi: 10.52547/rap.12.32.131
Zahedibonab, H. (2022). Estimating the rate of inbreeding and homozygosity of sex alleles in the 18th generation colonies of the honey bee breeding strategy. Master's thesis, Faculty of Agriculture, Zanjan University. (In Persian)
Zarin, F. (2000). Investigating the level of homozygosity of sexual alleles in the honey bee population of Tehran, Isfahan, Central and Qazvin provinces (comprehensive plan) and its relationship with honey production. Master's thesis, Imam Khomeini Higher Education Center. (In Persian)