Chemical-free recovery of crude protein from livestock manure digestate solid by thermal hydrolysis

Ken Tasaki

Bioresources and Bioprocessing ›› 2021, Vol. 8 ›› Issue (1) : 60

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Bioresources and Bioprocessing ›› 2021, Vol. 8 ›› Issue (1) :60 DOI: 10.1186/s40643-021-00406-1
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Chemical-free recovery of crude protein from livestock manure digestate solid by thermal hydrolysis

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Abstract

Protein is becoming an increasingly important resource for a variety of commercial applications. Yet, a large volume of protein is being wasted. Notably, livestock manure solids have a significant content of protein which is not only underutilized, but prone to runoff and eventual breakdown to reactive nitrogen compounds, contributing to eutrophication. It would be desirable to remove protein before it causes environmental hazards and then convert it to value-added commercial applications. We have developed a novel thermal hydrolysis process (THP) to extract crude protein from livestock manure solid, or manure digestate solid (MDS) in particular, without the use of any chemical. We demonstrate the versatility of our new process to control the molecular weight (MW) distribution of the extracted protein hydrolysate (PH). The antioxidant activity of the crude protein hydrolysate (CPH) has been examined through Oxygen Radical Absorbance Capacity Assay. The results have shown that our CPH had its antioxidant capacity against the peroxyl radical similar to that of vitamin E and exhibited almost 7 times as strong inhibition against the hydroxyl radical as vitamin E. We also evaluated the nutritional value of our PH by analyzing its amino acid composition and the MW distribution through amino acid analysis, SDS-PAGE, and MALDI-TOF mass spectroscopy. The characterizations have revealed that the PH recovered from MDS had 2.5 times as much essential amino acids as soybean meal on dry matter basis, with the MW distribution ranging from over a 100 Da to 100 KDa. Finally, the protein powder was prepared from the extracted CPH solution and its composition was analyzed.

Keywords

Antioxidant / Cow manure / Protein hydrolysate / Thermal hydrolysis

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Ken Tasaki. Chemical-free recovery of crude protein from livestock manure digestate solid by thermal hydrolysis. Bioresources and Bioprocessing, 2021, 8(1): 60 DOI:10.1186/s40643-021-00406-1

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References

[1]

AAFCO’s Laboratory methods and services committee fiber best practices working group (2017) Critical factors in determining fiber in feeds and forages; Champaign, IL, January

[2]

Adhikari B, Dhungana SK, Ali MW, Adhikari A, Kim ID, Shin DH. Antioxidant activities, polyphenol, flavonoid, and amino acid contents in peanut shell. J Saudi Soc Agric Sci, 2019, 18: 437-442.

[3]

Antunes M, Fernandes AN, Crespo JS, Giovanela M (2007) Thermal degradation of humic acids from aquatic environments. Anais do 9° Congresso Brasileiro de Polímeros, Corpus ID: 229321856

[4]

Banaszkiewicz T. El-Shemy H. Nutritional value of soybean meal. Soybean and nutrition, 2011 IntechOpen

[5]

Baskar G, Kalavathy G, Aiswarya R, Selvakumari IA. Azad K. Advances in bio-oil extraction from nonedible oil seeds and algal biomass. Advances in eco-fuels for a sustainable environment, Woodhead publishing series in energy, 2019, Amsterdam: Elsevier, 187-210.

[6]

Cavagnero S, Debe DA, Zhou ZH, Adams MWW, Chan SI. Kinetic role of electrostatic interactions in the unfolding of hyperthermophilic and mesophilic rubredoxins. Biochemistry, 1998, 37: 3369-3376.

[7]

Chen S, Liao W, Liu C, Wen Z, Kincaid RL, Harrison JH, Elliott DC, Brown MD, Solana AE, Stevens DJ (2003) Value-added chemicals from animal manure. PNNL-14495, Pacific Northwest National Laboratory, Richmond, Washington, December

[8]

Davalos A, Miguel M, Bartolome B, Lopez-Fandino R. Antioxidant activity of peptides derived from egg white proteins by enzymatic hydrolysis. J Food Prot, 2004, 67: 1939-1944.

[9]

Dhillon GS. Protein byproducts, 2016, London: Academic Press.

[10]

Donoso-Bravo A, Pérez-Elvira S, Aymerich E, Fdz-Polanco F. Assessment of the influence of thermal pre-treatment time on the macromolecular composition and anaerobic biodegradability of sewage sludge. Bioresour Technol, 2011, 102: 660-666.

[11]

Feng P, Ding H, Lin H, Chen W. The antioxidant protein database. Sci Rep, 2017, 7: 7449.

[12]

He ZQ, Senwo ZN, Zou HX, Tazisong IA, Martens DA. Amino compounds in poultry litter, litter-amended pasture soils and grass shoots. Pedosphere, 2014, 24: 178-185.

[13]

Hook VYH, Burton D, Yasothornsrikul S, Hastings RH, Deftos LJ. Proteolysis of ProPTHrP (1-141) by prohormone thiol protease at multibasic residues generates PTHrP-related peptides: implications for PTHrP peptide production in lung cancer cells. Biochem Biophys Res Commun, 2001, 285: 932-938.

[14]

Hu X, Cebe P, Weiss AS, Omenetto F, Kaplan DL. Protein-based composite materials. Mater Today, 2012, 15: 208-215.

[15]

Kanmaz KS, Balta Z, Demirçivi P, Üzer A, Hızal J, Apak R. Determination of total antioxidant capacity of humic acids using CUPRAC, Folin–Ciocalteu, noble metal nanoparticle- and solid–liquid extraction-based methods. Talanta, 2016, 153: 120-129.

[16]

Khandelwal KC, Gaur AC. Degradation of humic acids, extracted from manure and soil by some Streptomycetes and Fungi. Zentralbl Bakteriol Naturwiss, 1980, 135: 119-122.

[17]

Kim R, Zinbo M, Adams JA, Young WC. Nonbiodegradable organic compounds found in automotive spraybooth scrubber water. Water Environ Res, 2000, 72: 405-412.

[18]

Kim K, Jung J, Kwon JH, Yang JW. Dynamic microfiltration with a perforated disk for effective harvesting of microalgae. J Membr Sci, 2015, 475: 252-258.

[19]

Kim JM, Liceaga AM, Yoon KY. Purification and identification of an antioxidant peptide from perilla seed (Perilla frutescens) meal protein hydrolysate. Food Sci Nutr, 2019, 7: 1645-1655.

[20]

Kitts DD, Chen XM, Hao JH. Demonstration of antioxidant and anti-inflammatory bioactivities from sugar–amino acid maillard reaction products. J Agric Food Chem, 2012, 60: 6718-6727.

[21]

Krogell J, Korotkova E, Eränen K, Pranovich A, Salmi T, Murzin D, Willför S. Intensification of hemicellulose hot-water extraction from spruce wood in a batch extractor—effects of wood particle size. Bioresour Technol, 2013, 143: 212-220.

[22]

Leung R, Venus C, Zeng T, Tsopmo A. Structure-function relationships of hydroxyl radical scavenging and chromium-VI reducing cysteine-tripeptides derived from rye secalin. Food Chem, 2018, 254: 165-169.

[23]

Li N, Liu H, Xue Y, Wang H, Dai X. Partition and fate analysis of fluoroquinolones in sewage sludge during anaerobic digestion with thermal hydrolysis pretreatment. Sci Total Environ, 2017, 581–582: 715-721.

[24]

Liang X, Fan Q. Application of sub-critical water extraction in pharmaceutical industry. J Mater Sci Chem Eng, 2013, 1: 1-6.

[25]

Liu R, Xing L, Fu Q, Zhou GH, Zhang WG. A review of antioxidant peptides derived from meat muscle and by-products. Antioxidants, 2016, 5: 32.

[26]

Livestock Wastes Subcommittee. Livestock waste facilities handbook, 1993, 3, Ames: Midwest Plan Service, Iowa State University, 2.1 (ISBN 0-89373-089-0)

[27]

Lu J, Watson J, Zeng J, Li H, Zhu Z, Wang M, Liu Z. Biocrude production and heavy metal migration during hydrothermal liquefaction of swine manure. Process Saf Environ Prot, 2018, 115: 108-115.

[28]

Ma Y, Wilson C, Novak JT, Riffat R, Aynur S, Murthy S, Pruden A. Effect of various sludge digestion conditions on sulfonamide, macrolide, and tetracycline resistance genes and class I integrons. Environ Sci Technol, 2011, 45: 7855-7861.

[29]

McAfee JG, Edmondson SP, Zegar I, Shriver JW. Equilibrium DNA binding of Sac7d protein from the hyperthermophile Sulfolobus acidocaldarius: fuorescence and circular dichroism studies. Biochemistry, 1996, 35: 4034-4045.

[30]

McCalla J, Waugh T, Lohry E. Pasupuleti VK, Demain AL. Protein hydrolysates/peptides in animal nutrition. Protein hydrolysates in biotechnology, 2010, Dordrecht: Springer, 179-190.

[31]

Nastića N, Švarc-Gajića J, Delerue-Matosb C, Barroso MF, Soares C, Manuela MM, Morais S, Mašković P, Gaurina Srček VG, Slivac I, Radošević K, Radojković M. Subcritical water extraction as an environmentally-friendly technique to recover bioactive compounds from traditional Serbian medicinal plants. Ind Crops Prod, 2018, 111: 579-589.

[32]

Olsson C, Jansson H, Swenson J. The role of trehalose for the stabilization of proteins. J Phys Chem B, 2016, 120: 4723-4731.

[33]

Pappenberger G, Schurig H, Jaenicke R. Disruption of an ionic network leads to accelerated thermal denaturation of d-glyceraldehyde-3-phosphate dehydrogenase from the hyperthermophilic bacterium Thermotoga maritima. J Mol Biol, 1997, 274: 676-683.

[34]

Pasupuleti VK, Demain AL. Protein hydrolysates in biotechnology, 2010, Dordrecht: Springer.

[35]

Pasupuleti VK, Homes C, Demain AL. Pasupuleti VK, Demain AD. Applications of protein hydrolysates in biotechnology. protein hydrolysates in biotechnology, 2010, Dordrecht: Springer, 1-10.

[36]

Pei J, Yao H, Wang H, Ren J, Yu X. Comparison of ozone and thermal hydrolysis combined with anaerobic digestion for municipal and pharmaceutical waste sludge with tetracycline resistance genes. Water Res, 2016, 99: 122-128.

[37]

Pfeil W, Gesierich U, Kleemann GR, Sterner R. Ferredoxin from the hyperthermophile Thermotoga maritima is stable beyond the boiling point of water. J Mol Biol, 1997, 272: 591-596.

[38]

Pham-Huy LA, He H, Pham-Huy C. Free radicals, antioxidants in disease and health. Int J Biomed Sci, 2008, 4: 89-96.

[39]

Plaza M, Turner C. Pressurized hot water extraction of bioactives. Trends Anal Chem, 2017, 71: 39-54.

[40]

Pothekin SA, Ogasahara K, Yutani K. Transition state of heat denaturation of methionine aminopeptidase from a hyperthermophile. J Therm Anal Calorim, 2000, 62: 111-122.

[41]

Qian ZJ, Jung WK, Byun HG, Kim SK. Protective effect of an antioxidative peptide purified from gastrointestinal digests of oyster crassostrea gigas against free radical induced DNA damage. Bioresour Technol, 2008, 99: 3365-3371.

[42]

Russell PR, Strachan AN. The thermal decomposition of biurea. J Chem Soc Perkin Trans, 1978, 2: 323-326.

[43]

Sila A, Bougatef A. Antioxidant peptides from marine by-products: isolation, identification and application in food systems. A review. J Funct Foods, 2016, 21: 10-26.

[44]

Silva NHCS, Vilela C, Marrucho IM, Freire CSR, Neto CPAJD. Protein-based materials: from sources to innovative sustainable materials for biomedical applications. J Mater Chem B, 2014, 2: 3715-3740.

[45]

Tamgüney G, Miller MW, Wolfe LL, Sirochman TM, Glidden DV, Palmer C, Lemus A, DeArmond SJ, Prusiner SB. Asymmptomatic deer excrete infectious prions in feces. Nature, 2009, 24: 529-532.

[46]

Tischer S, Börnhorst M, Amsler J, Schoch G, Deutschmann O. Thermodynamics and reaction mechanism of urea decomposition. Phys Chem Chem Phys, 2019

[47]

Tong J, Lu XT, Zhang JY, Sui Q, Wang R, Chen M, Wei Y. Occurrence of antibiotic resistance genes and mobile genetic elements in enterococci and genomic DNA during anaerobic digestion of pharmaceutical waste sludge with different pretreatments. Bioresour Technol, 2017, 235: 316-324.

[48]

Tsapekos P (2017) Enhancing biogas production from recalcitrant lignocellulosic residue. Ph.D. Thesis, Technical University of Denmark, DTU Environment, February

[49]

U.S. Department of Agriculture (2020) Livestock and poultry: world markets and trade. Foreign Agricultural Service, July 10

[50]

Vanotti M, Szogi A (2019) Extraction of amino acids and phosphorus from biological materials. U.S. Patent Application, 20190071370, March 7

[51]

Wang J, Liao W, Nimalaratne C, Chakrabarti S, Wu J. Purification and characterization of antioxidant peptides from cooked eggs using a dynamic in vitro gastrointestinal model in vascular smooth muscle A7r5 cells. Npj Sci Food, 2018, 2: 7.

[52]

Welker E, Wedemeyer WJ, Scheraga HA. A role for intermolecular disulfide bonds in prion diseases?. Proc Natl Acad Sci, 2001, 98: 4334-4336.

[53]

Wichmann F, Udikovic-Kolic N, Andrew S, Handelsman J. Diverse antibiotic resistance genes in dairy cow manure. Mbio, 2014, 5(2): e0101713.

[54]

Wu HC, Shiau CY, Chen HM, Chiou TK. Antioxidant activities of carnosine, anserine, some free amino acids and their combination. J Food Drug Anal, 2003, 11: 148-153.

[55]

Yang J, Hu L, Cai T, Chen Q, Ma Q, Yang J, Hong CMC. Purification and identification of two novel antioxidant peptides from perilla (Perilla frutescens L. Britton) seed protein hydrolysates. PLoS ONE, 2018, 13(7): e0200021.

[56]

Ye N, Hu P, Xu S, Chen M, Wang S, Hong J, Chen T, Cai T. Preparation and characterization of antioxidant peptides from carrot seed protein. J Food Qual, 2018

[57]

Zhang X, Li R. Variation of antibiotics in sludge pretreatment and anaerobic digestion processes: degradation and solid–liquid distribution. Bioresour Technol, 2018, 255: 266-272.

[58]

Zhong Y, Liu Z, Isaguire C, Liu Y, Liao W. Fungal fermentation on anaerobic digestate for lipid-based biofuel production. Biotechnol Biofuels, 2016, 9: 253.

[59]

Zou TB, He TP, Li HB, Tang HW, Xia EQ. The structure-activity relationship of the antioxidant peptides from natural proteins. Molecules, 2016, 21: 72.

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