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Funded Projects › H2020

iFermenter · iFERMENTER - CONVERSION OF FORESTRY SUGAR RESIDUAL STREAMS TO ANTIMICROBIAL PROTEINS BY INTELLIGENT FERMENTATION

H2020Status: CLOSED1 May 201831 July 2022EU funding €3,997,825Call H2020-BBI-JTI-2017

Plant dry matter, so-called lignocellulosic biomass, is the largest renewable biomass feedstock on Earth. Europe has over 14 mill tons of sugar residuals from biorefineries, which could be converted to profitable products and contribute to a sustainable bioeconomy. Unfortunately, existing biorefineries struggle with technical issues and low profitability due to the lack of adequate fermentation processes. Therefore, these sugars are either incinerated to generate energy or at best converted to ethanol (€0.6 /kg) but not to higher value chemicals.Current concepts that aim to establish fermentation processes to convert residual sugar streams to high value products face challenges including inefficient sugar utilization by microorganisms and inhibitors in the residual streams, leading to low productivity and yields.Our project aims to recover high value compounds from sugar residuals, and to turn fermentation processes converting these residual to antimicrobials cost effective. We will recover the high value sugar galactose (€40-200 /kg) from residual streams as part of their treatment process. By genome editing technique, we will design cell factories that consume the remaining residuals and produce nisin (€50-150 /kg), an industrially important commercial food/feed preservative. Additionally, we will develop an affordable, online feedback add-on system that will allow to intelligently change residual mixture during fermentation of these cell factories to optimize production online during the process. In a 150 L industrial bioreactor, we will demonstrate that our add-on invention iFermenter- increases the yields of nisin by over 2 fold- increases the pediocin production by over 50% compared to what is possible today,- and reduce at least 20% in CO2 footprint with this process compared to existing solutions.Thus, iFermenter will render production of high value products with residual sugar stream highly efficient and cost-effective contributing to circular economy.

Consortium · 12 organisations

coordinator

NORGES TEKNISK-NATURVITENSKAPELIGE UNIVERSITET NTNU

NO · €995,025

participant

TECHNISCHE UNIVERSITAET WIEN

AT · €728,266

participant

MYBIOTECH GMBH

DE · €128,025

participant

BORREGAARD AS

NO

participant

UNIVERSITAET ULM

DE · €438,000

participant

INFORS AG

CH · €79,875

participant

UNIVERSIDAD DE SANTIAGO DE COMPOSTELA

ES · €179,390

participant

BIO BASE EUROPE PILOT PLANT VZW

BE · €438,474

participant

NORGES MILJO-OG BIOVITENSKAPELIGE UNIVERSITET

NO · €146,500

participant

DANMARKS TEKNISKE UNIVERSITET

DK · €250,395

participant

GALACTIC SA

BE

participant

UNIVERSITAT DES SAARLANDES

DE · €613,875

Research fields

View the official record on CORDIS →

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Source: CORDIS, Publications Office of the European Union. Global Research Partnerships surfaces open EU research data to help you find collaborators; we are not affiliated with the European Union.