4.8 Article

Alkaline hydrogen peroxide pretreatment combined with bio-additives to boost high-solids enzymatic hydrolysis of sugarcane bagasse for succinic acid processing

Journal

BIORESOURCE TECHNOLOGY
Volume 345, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.biortech.2021.126550

Keywords

Lignocellulosic biomass; Succinic acid; Pretreatment; Enzymatic hydrolysis; Fermentation

Funding

  1. Agricultural Science and Technology Innovation Program of China [CAAS-ASTIP-2021-IBFC]
  2. China Agricultural Research System for Bast and Leaf Fiber Crops [CARS-16]
  3. Program for Scientific Research Start-up Funds of Guangdong Ocean University [060302042006]
  4. Innovative Team Program of High Education of Guangdong Province [2021KCXTD021]
  5. Guangdong Innovation Team of Seafood Green Processing Technology [2019KCXTD011]

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The study optimized the AHP pretreatment conditions for sugarcane bagasse, followed by enzymatic hydrolysis at high-solids substrate loading and fed-batch fermentation to convert fermentable sugars into succinic acid (SA), achieving a high SA conversion rate of 0.29 g/g SCB raw material.
Alkaline hydrogen peroxide (AHP) pretreatment of sugarcane bagasse (SCB) at mild conditions was optimized with response surface methodology (RSM), then enzymatic hydrolysis was performed at high-solids substrate loading (30 %, w/v), followed by fed-batch fermentation to convert the fermentable sugars into succinic acid (SA). Results showed the AHP pretreatment conditions of H2O2 concentration 5.5 % (v/v), solid-to-liquid ratio 0.08, pretreatment temperature 65 degrees C and time 5 h could achieve the highest sugar yield (74.3 %); both additives and fed-batch strategy were favored to boost enzymatic hydrolysis, the concentration and yield of total sugars reached to 195 g/L and 70 % with cellulase dosage of only 6 FPU/g dry biomass (DM); all glucose and xylose could be utilized after fed-batch fermentation, and the obtained concentration and yield of SA reached 41.4 g/L and 63.8 %. In summary, a SA conversion rate high to 0.29 g/g SCB raw material could be achieved via the developed process.

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