Lactic acid bacteria and yeast strains isolated from fermented fish (Budu) identified as candidate ruminant probiotics based on in vitro rumen fermentation characteristics

被引:8
作者
Ardani, Laily Rinda [1 ]
Marlida, Yetti [2 ]
Zain, Mardiati [2 ]
Jamsari, Jamsari [3 ]
Fassah, Dilla Mareistia [4 ]
机构
[1] Andalas Univ, Fac Anim Sci, PMDSU Program, Grad Program, Padang, West Sumatera, Indonesia
[2] Andalas Univ, Dept Anim Nutr, Fac Anim Sci, Padang, West Sumatera, Indonesia
[3] Andalas Univ, Fac Agr, Dept Plant Breeding, Padang, West Sumatera, Indonesia
[4] IPB Univ, Fac Anim Sci, Dept Nutr & Feed Technol, Bogor, West Java, Indonesia
关键词
in vitro; lactic acid bacteria; probiotics; rumen fermentation; yeast; DIRECT-FED MICROBIALS; SUPPLEMENTATION; DIGESTION; CORN; DIGESTIBILITY;
D O I
10.14202/vetworld.2023.395-402
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
Background and Aim: Probiotic supplementation can assist with manipulating the rumen microbial ecosystem. Lactic acid bacteria and yeast from fermented fish (Budu) as the indigenous food from West Sumatra, Indonesia, are potential probiotics for livestock. This study aims to select the best candidate lactic acid bacteria and yeast strains from fermented fish as ruminant probiotics and evaluate the effect of their supplementation on the characteristics of rumen fermentation, feed digestion, and total gas production in vitro. Materials and Methods: This study used nine treatments, performed in triplicate, in a completely randomized design. The substrate ratio comprised of 70% Pennisetum purpureum forage and 30% concentrate. Five lactic acid bacteria and three yeast isolates were used in this study. Treatments were as follows: T0: control (basal diet); T1: T0 + Lactobacillus parabuchneri strain 3347; T2: T0 + Lactobacillus buchneri strain 5296; T3: T0 + Lactobacillus harbinensis JCM 16178; T4: T0 + Schleiferilactobacillus harbinensis strain LH991; T5: T0 + L. parabuchneri strain 6902; T6: T0 + Pichia kudriavzevii strain B-5P; T7: T0 + P. kudriavzevii strain CBS 5147; and T8: T0 + commercial yeast (Saccharomyces cerevisiae). The lactic acid bacteria inoculum contained 1.02 x 1011 colony-forming unit (CFU)/mL, while the yeast inoculum contained 1.5 x 1010 CFU/mL. Results: The results showed that four lactic acid bacteria and three yeast produced a higher total gas yield (104-183.33 mL) compared to the control (103 mL). Supplementation with lactic acid bacteria in the rumen fermentation in vitro showed dry matter digestibility of 63%-70% and organic matter digestibility (OMD) of 64%-71%. We observed that total volatile fatty acid (VFA) production in all treatments was significantly higher (86-121 mM) compared to the control (81 mM). The concentration of NH3 production was higher in all treatments (12.33-16.83 mM) than in the control (12.25 mM). Meanwhile, the probiotic supplementation did not cause a significant change in the rumen pH (6.86-7.12). Supplementation with the lactic acid bacteria S. harbinensis strain LH991 consistently demonstrated the best results from the parameters of dry and OMD (70.29% and 71.16%, respectively), total VFA (121.67 mM), NH3 (16.83 mM), and total gas production (149.17 mL). The best results were observed from the yeast candidate P. kudriavzevii strain B-5P, where the results were dry and OMD (67.64% and 69.55% respectively), total VFA (96.67 mM), NH3 (13.42 mM), and total gas production (183.33 mL). Conclusion: Based on the obtained results, lactic acid bacteria S. harbinensis strain LH991 and yeast P. kudriavzevii strain B-5P are attractive candidates to be utilized as probiotics for ruminants based on their potential to improve rumen fermentation in vitro. This probiotic supplementation can increase the digestibility of feed ingredients, production of total VFA and NH3, and total gas produced.
引用
收藏
页码:395 / 402
页数:8
相关论文
共 45 条
[1]   Effects of a blend of Saccharomyces cerevisiae-based direct-fed microbial and fermentation products in the diet of newly weaned beef steers: growth performance, whole-blood immune gene expression, serum biochemistry, and plasma metabolome [J].
Adeyemi, James A. ;
Harmon, David L. ;
Compart, D. M. Paulus ;
Ogunade, Ibukun M. .
JOURNAL OF ANIMAL SCIENCE, 2019, 97 (11) :4657-4667
[2]   Effect of probiotic supplementation on growth and global gene expression in dairy cows [J].
Adjei-Fremah, Sarah ;
Ekwemalor, Kingsley ;
Asiamah, Emmanuel K. ;
Ismail, Hamid ;
Ibrahim, Salam ;
Worku, Mulumebet .
JOURNAL OF APPLIED ANIMAL RESEARCH, 2018, 46 (01) :257-263
[3]  
Al-Galbi H A J, 2022, Arch Razi Inst, V77, P323, DOI [10.22092/ARI.2021.356952.1943, 10.22092/ari.2021.356952.1943]
[4]   The role of probiotics on animal health and nutrition [J].
Anee, Ismat Jahan ;
Alam, Shamimul ;
Begum, Rowshan Ara ;
Shahjahan, Reza Md ;
Khandaker, Ashfaqul Muid .
JOURNAL OF BASIC AND APPLIED ZOOLOGY, 2021, 82 (01)
[5]  
Anggraini L., 2019, Isolation and characterization of lactic acid bacteria producing GABA from indigenous west sumatera fermented food, V9, P855
[6]   Use of probiotics and botanical extracts to improve ruminant production in the tropics: A review [J].
Arowolo, Muhammed A. ;
He, Jianhua .
ANIMAL NUTRITION, 2018, 4 (03) :241-249
[7]  
Astuti W D., 2018, Pak. J. Nutr, V17, P131, DOI [DOI 10.3923/PJN.2018.131.139, 10.3923/ pjn.2018.131.139]
[8]   Changes in rumen fermentation and bacterial profiles after administering Lactiplantibacillus plantarum as a probiotic [J].
Astuti, Wulansih Dwi ;
Ridwan, Roni ;
Fidriyanto, Rusli ;
Rohmatussolihat, Rohmatussolihat ;
Sari, Nurul Fitri ;
Sarwono, Ki Ageng ;
Fitri, Ainissya ;
Widyastuti, Yantyati .
VETERINARY WORLD, 2022, 15 (08) :1969-1974
[9]   Nitrogen Metabolism in the Rumen [J].
Bach, A. ;
Calsamiglia, S. ;
Stern, M. D. .
JOURNAL OF DAIRY SCIENCE, 2005, 88 (13) :E9-E21
[10]   Dietary Supplementation with Saccharomyces cerevisiae, Clostridium butyricum and Their Combination Ameliorate Rumen Fermentation and Growth Performance of Heat-Stressed Goats [J].
Cai, Liyuan ;
Yu, Jiangkun ;
Hartanto, Rudy ;
Qi, Desheng .
ANIMALS, 2021, 11 (07)