Pengaruh Waktu Hidrolisis dan Fermentasi terhadap Karakteristik Peptida Kelat Kalsium dari Tulang Ceker Ayam
Isi Artikel Utama
Abstrak
Latar belakang: Tulang ceker ayam merupakan hasil samping yang berpotensi dimanfaatkan sebagai sumber peptida kelat kalsium. Kajian mengenai pengaruh kombinasi hidrolisis enzimatik dan fermentasi terhadap karakteristik peptida kelat kalsium dari bahan tersebut masih terbatas sehingga diperlukan evaluasi kondisi proses yang sesuai. Tujuan: Penelitian ini bertujuan untuk mengevaluasi pengaruh waktu hidrolisis dan fermentasi terhadap kadar protein kasar dan kadar kalsium pada kelat kalsium yang dihasilkan dari tulang ceker ayam. Metode: Metode penelitian menggunakan rancangan faktorial 3 × 2 dengan faktor waktu hidrolisis (3, 6, dan 9 jam) dan waktu fermentasi (18 dan 24 jam). Parameter yang diamati meliputi kadar protein kasar, kadar kalsium, dan karakteristik proksimat. Data dianalisis menggunakan analisis ragam (ANOVA) dan dilanjutkan dengan uji Duncan pada taraf nyata 5%. Hasil dan Pembahasan: Hasil penelitian menunjukkan bahwa peningkatan waktu hidrolisis dan fermentasi menghasilkan perbedaan kadar protein kasar dan kalsium. Kadar protein kasar tertinggi sebesar 40,06±0,03% dan kadar kalsium tertinggi sebesar 3,847±0,02 mg/100g bk diperoleh pada perlakuan hidrolisis 3 jam dan fermentasi 24 jam (H1F2). Kesimpulan: Variasi waktu proses memengaruhi karakteristik peptida yang dihasilkan dari tulang ceker ayam. Hasil penelitian menunjukkan bahwa kombinasi hidrolisis enzimatik dan fermentasi berpotensi dimanfaatkan dalam pengembangan bahan fortifikasi pangan berbasis sumber daya lokal.
Rincian Artikel
Terbitan
Bagian

Artikel ini berlisensiCreative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.
catatan copyright agar disepakati oleh penulis.
Penulis sepakat dengan ketentuan-ketentuan dalam etika publikasi
Penulis menyatakan bahwa karya tulis yang diserahkan untuk diterbitkan adalah asli, belum pernah dipublikasikan di manapun dalam bahasa apapun, dan tidak sedang dalam proses pengajuan ke penerbit lain
Referensi
An, J., Zhang, Y., Ying, Z., Li, H., Liu, W., Wang, J., & Liu, X. (2022). The Formation, Structural Characteristics, Absorption Pathways and Bioavailability of Calcium–Peptide Chelates. Foods, 11(18), 2762. https://doi.org/10.3390/FOODS11182762
Ata, O., Bozdogan, N., Mataraci, C. E., Kumcuoglu, S., Kaya Bayram, S., & Tavman, S. (2025). Extraction and Characterization of Valuable Compounds From Chicken Sternal Cartilage: Type II Collagen and Chondroitin Sulfate. Food Chemistry, 462. https://doi.org/ 10.1016/j.foodchem.2024.141023
Bardosono, S., Hestiantoro, A., Maruli Tua Lubis, A., Setiati, S., Retno Prijanti, A., Purwantyastuti, A., Sutanto, L., Regina Rachmawati, M., & Tan, S. (2020). Relevance of Calcium and Vitamin D in Supporting Bone Health: An Expert Panel Recommendation in Indonesia. International Journal of Nutrition and Food Sciences 2020, 9(2), 54–62. https:// doi.org/10.11648/J.IJNFS.20200902.13
Bu, G., Zhao, X., Wang, M., Ti, G., Chen, F., Duan, X., Huang, Y., & Li, P. (2024). Identification of Calcium Chelating Peptides From Peanut Protein Hydrolysate and Absorption Activity of Peptide-Calcium Complex. Journal of the Science of Food and Agriculture, 104(11), 6676–6686. https://doi.org/10.1002/JSFA.13493
Cai, C., Liu, Y., Xu, Y., Zhang, J., Wei, B., Xu, C., & Wang, H. (2025). Mineral-Element-Chelating Activity of Food-Derived Peptides: Influencing Factors and Enhancement Strategies. Critical Reviews in Food Science and Nutrition, 65(16), 3241–3255. https://doi.org/ 10.1080/10408398.2024.2361299
Dai, H., Cao, Y., Fu, Y., Tang, M., Feng, X., Ma, L., & Zhang, Y. (2024). Sustainable and One-Pot Fabrication of Peptide Chelated Calcium From Fish Scale Hydrolysates. Collagen and Leather, 6(1), 7-. https://doi.org/10.1186/S42825-024-00150-0
Ding, Q., Sheikh, A. R., Zhu, Y., Zheng, Y., Sun, N., Luo, L., Raynaldo, F. A., Ma, H., & Liu, J. (2025). Preparation and Characterization of Ultrasound-Assisted Novel Peptide Calcium Chelates from Nannocholoropsis oceanica. Food and Bioprocess Technology, 18(3), 2820–2839. https://doi.org/10.1007/S11947-024-03634-3
Fan, C., Liu, Y., Yang, T., Tian, Q., Zhao, X., & Hou, H. (2025). Discovery of Novel Calcium Chelating Peptides From Antarctic Krill: Structural Elucidation and Dynamic Coordination Mechanisms. Food chemistry, 493(Pt 3), 145809. https://doi.org/10.1016/J. FOODCHEM.2025.145809
Han, L., Li, Y., Hu, B., Wang, W., Guo, J., Yang, J., Dong, N., Li, Y., & Li, T. (2024). Enhancement of Calcium Chelating Activity in Peptides from Sea Cucumber Ovum through Phosphorylation Modification. Foods, 13(12), 1943. https://doi.org/10.3390/ FOODS13121943/S1
Harahap, H., Manurung, R., Iriany, & Yustira, A. (2023). Processing and Utilization of Natural Resources of Gulamah Fish with Boiling and Steaming Method. IOP Conference Series: Earth and Environmental Science, 1188(1), 012025. https://doi.org/10.1088/1755 1315/1188/1/012025
Horwitz, William. (2006). Official methods of analysis of AOAC International. AOAC International.
Hu, G., Li, X., Su, R., Corazzin, M., Dou, L., Sun, L., Hou, P., Su, L., Jin, Y., & Zhao, L. (2024). Effects of Sheep Bone Peptide-Chelated Calcium on Calcium Absorption and Bone Deposition in Rats Fed a Low-Calcium Diet. Journal of Food Biochemistry, 2024, 1–14. https://doi.org/10.1155/2024/8434888
Islamy, A., Edhi, S. N., Saraswati, & Nanik, R. (2024). Sirup Glukosa Berbasis Enzim dari Mikroba Lokal sebagai Gula Masa Depan Indonesia: Potensi dan Tantangan. Pangan, 33(2), 159–168. https://doi.org/10.33964/JP.V33I2.801
Kekalih, A., Chandra, D. N., Mirtha, L. T., Khouw, I., Wong, G., & Sekartini, R. (2025). Dietary Intakes, Nutritional and Biochemical Status of 6 Months to 12-Year-Old Children Before the COVID-19 Pandemic Era: The South East Asian Nutrition Survey II Indonesia (SEANUTS II) Study in Java and Sumatera Islands, Indonesia. Public Health Nutrition, 28(1), e1. https://doi.org/10.1017/S1368980024001654
Khairul, S. A. M., Ainy, M. N., Faridah, A., Jamaludin, N. S., & Ab Rashid, N. K. M. (2022). The Proximate Composition and Metabolite Profiling of Sugarcane (Saccharum officinarum) Molasses. Malaysian Applied Biology, 51(2), 63–68. https://doi.org/10.55230/ MABJOURNAL.V51I2.2259
Kheeree, N., Kuptawach, K., Puthong, S., Sangtanoo, P., Srimongkol, P., Boonserm, P., Reamtong, O., Choowongkomon, K., & Karnchanatat, A. (2022). Discovery of Calcium Binding Peptides Derived From Defatted Lemon Basil Seeds With Enhanced Calcium Uptake in Human Intestinal Epithelial Cells, Caco-2. Scientific Reports, 12(1), 4659. https:/ /doi.org/10.1038/S41598-022-08380-0
Liang, R., Jiang, Y., Yokoyama, W., Yang, C., Cao, G., & Zhong, F. (2016). Preparation of Pickering Emulsions With Short, Medium and Long Chain Triacylglycerols Stabilized by Starch Nanocrystals and Their In Vitro Digestion Properties. RSC Advances, 6(101), 99496–99508. https://doi.org/10.1039/C6RA18468E
Liao, W., Chen, H., Jin, W., Yang, Z., Cao, Y., & Miao, J. (2020). Three Newly Isolated Calcium Chelating Peptides from Tilapia Bone Collagen Hydrolysate Enhance Calcium Absorption Activity in Intestinal Caco-2 Cells. Journal of Agricultural and Food Chemistry, 68(7), 2091–2098. https://doi.org/10.1021/ACS.JAFC.9B07602 Mousavi, Z. E., &
Mousavi, S. M. A. (2021). Role of Probiotic Bacteria on Bioavailability of Functional Ingredients Under Fermentation Process. Microorganisms for Sustainability, 2, 237–256. https://doi.org/10.1007/978-981-16-0223-8_10/SAVE RESEARCH
Muntean, F. L., Olariu, I., Marian, D., Olariu, T., Petrescu, E. L., Olariu, T., & Drăghici, G. A. (2024). Hydroxyapatite from Mollusk Shells: Characteristics, Production, and Potential Applications in Dentistry. Dentistry Journal, 12(12), 409. https://doi.org/10.3390/ DJ12120409
Muthiah, R. A., Kumalasari, I. D., & Ibdal. (2024). Sifat Fisiko-Kimia, Mikrobiologi dan Organoleptik Roti Tawar Sourdough Tersubstitusi dengan Tepung Umbi Kimpul (Xanthosoma sagittifolium). Pangan, 33(3), 249–266. https://doi.org/10.33964/JP. V33I3.649
Naghshi, S., Naemi, M., Sadeghi, O., Darooghegi Mofrad, M., Moezrad, M., & Azadbakht, L. (2022). Total, Dietary, and Supplemental Calcium Intake and Risk of All-Cause Cardiovascular, and Cancer Mortality: A Systematic Review and Dose-Response Meta Analysis of Prospective Cohort Studies. Critical Reviews in Food Science and Nutrition, 62(21), 5733–5743. https://doi.org/10.1080/10408398.2021.1890690
Patil, P. J., Usman, M., Zhang, C., Mehmood, A., Zhou, M., Teng, C., & Li, X. (2022). An Updated Review on Food-Derived Bioactive Peptides: Focus on the Regulatory Requirements, Safety, and Bioavailability. Comprehensive Reviews in Food Science and Food Safety, 21(2), 1732–1776. https://doi.org/10.1111/1541-4337.12911
Pertiwi, M., Atma, Y., Mustopa, A. Z., & Maisarah, R. (2018). Karakteristik Fisik dan Kimia Gelatin dari Tulang Ikan Patin dengan Pre-Treatment Asam Sitrat. Jurnal Aplikasi Teknologi Pangan, 7(2), 83–91. https://doi.org/10.17728/JATP.2470
Siembab, K., Garbarczyk, W., Napieralska, A., Kapla, A., Černohorská, A., Bednarczyk, D., Białeta, J., Rowińska, K., Jurkiewicz, M., & Pysiewicz, W. (2025). Comparison of Dietary and Supplemental Calcium – A Systematic Review. Quality in Sport, 38, 58155. https:// doi.org/10.12775/QS.2025.38.58155
Taufik, Moh., Seveline, S., & Saputri, E. R. (2018). Validasi Metode Analisis Kadar Kalsium pada Susu Segar secara Titrasi Kompleksometri. Agritech, 38(2), 187–193. https://doi. org/10.22146/AGRITECH.25459
tha, A., Raju, C. V., Lakshmisha, I. P., Kumar, P. A., Sarojini, A., endra, G., & Pal, J. (2019). Nutritional Composition of Fish Bone Powder Extracted from Three different Fish Filleting Waste Boiling with Water and an Alkaline Media. International Journal of Current Microbiology and Applied Sciences, 8(2), 2942–2948. https://doi.org/10.20546/ IJCMAS.2019.802.342
Walters, M. E., Esfandi, R., & Tsopmo, A. (2018). Potential of Food Hydrolyzed Proteins and Peptides to Chelate Iron or Calcium and Enhance their Absorption. Foods, 7(10), 172. https://doi.org/10.3390/FOODS7100172
Wang, X., Zhang, Z., Xu, H., Li, X., & Hao, X. (2020). Preparation of Sheep Bone Collagen Peptide–Calcium Chelate Using Enzymolysis-Fermentation Methodology and Its Structural Characterization and Stability Analysis. RSC Advances, 10(20), 11624. https:// doi.org/10.1039/D0RA00425A
Widyaningsih, T. D., Rukmi, W. D., Sofia, E., Wijayanti, S. D., Wijayanti, N., Ersalia, R., Rochmawati, N., & Nangin, D. (2017). Extraction of Glycosaminoglycans Containing Glucosamine and Chondroitin Sulfate from Chicken Claw Cartilage. Research Journal of Life Science, 3(3), 181–189. https://doi.org/10.21776/UB.RJLS.2016.003.03.7
Yusran. (2024). Studi Kelayakan Usaha Tepung Limbah Ceker Ayam Sebagai Produk Subtitusi Pakan dalam Mendukung Ketahanan Pangan Sektor Peternakan dan Perikanan. Wanatani, 4(2), 198–204. https://doi.org/10.51574/JIP.V4I2.324
Zhai, W., Lin, D., Mo, R., Zou, X., Zhang, Y., Zhang, L., & Ge, Y. (2023). Process Optimization, Structural Characterization, and Calcium Release Rate Evaluation of Mung Bean Peptides-Calcium Chelate. Foods, 12(5), 1058. https://doi.org/10.3390/FOODS12051058
Zhang, H., Zhao, L., Shen, Q., Qi, L., Jiang, S., Guo, Y., Zhang, C., & Richel, A. (2021). Preparation of Cattle Bone Collagen Peptides-Calcium Chelate and Its Structural Characterization and Stability. LWT - Food Science and Technology, 144, 111264. https://doi. org/10.1016/j.lwt.2021.111264
Zhang, M., & Liu, K. (2022). Calcium Supplements and Structure-Activity Relationship of Peptide-Calcium Chelates: A Review. Food Science and Biotechnology, 31(9), 1111–1122. https://doi.org/10.1007/S10068-022-01128-6