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Insights into the action of phylogenetically diverse microbial expansins on the structure of cellulose microfibrils

Publiceringsår

2024

Upphovspersoner

Haddad Momeni, Majid; Zitting, Aleksi; Jäämuru, Vilma; Turunen, Rosaliina; Penttilä, Paavo; Buchko, Garry W.; Hiltunen, Salla; Maiorova, Natalia; Koivula, Anu; Sapkota, Janak; Marjamaa, Kaisa; Master, Emma R.

Abstrakt

<p>Background: Microbial expansins (EXLXs) are non-lytic proteins homologous to plant expansins involved in plant cell wall formation. Due to their non-lytic cell wall loosening properties and potential to disaggregate cellulosic structures, there is considerable interest in exploring the ability of microbial expansins (EXLX) to assist the processing of cellulosic biomass for broader biotechnological applications. Herein, EXLXs with different modular structure and from diverse phylogenetic origin were compared in terms of ability to bind cellulosic, xylosic, and chitinous substrates, to structurally modify cellulosic fibrils, and to boost enzymatic deconstruction of hardwood pulp. Results: Five heterogeneously produced EXLXs (Clavibacter michiganensis; CmiEXLX2, Dickeya aquatica; DaqEXLX1, Xanthomonas sacchari; XsaEXLX1, Nothophytophthora sp.; NspEXLX1 and Phytophthora cactorum; PcaEXLX1) were shown to bind xylan and hardwood pulp at pH 5.5 and CmiEXLX2 (harboring a family-2 carbohydrate-binding module) also bound well to crystalline cellulose. Small-angle X-ray scattering revealed a 20–25% increase in interfibrillar distance between neighboring cellulose microfibrils following treatment with CmiEXLX2, DaqEXLX1, or NspEXLX1. Correspondingly, combining xylanase with CmiEXLX2 and DaqEXLX1 increased product yield from hardwood pulp by ~ 25%, while supplementing the TrAA9A LPMO from Trichoderma reesei with CmiEXLX2, DaqEXLX1, and NspEXLX1 increased total product yield by over 35%. Conclusion: This direct comparison of diverse EXLXs revealed consistent impacts on interfibrillar spacing of cellulose microfibers and performance of carbohydrate-active enzymes predicted to act on fiber surfaces. These findings uncover new possibilities to employ EXLXs in the creation of value-added materials from cellulosic biomass.</p>
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Organisationer och upphovspersoner

Teknologiska forskningscentralen VTT Ab

Koivula Anu Orcid -palvelun logo

Marjamaa Kaisa

Maiorova Natalia

Turunen Rosaliina

Jäämuru Vilma

Aalto-universitetet

Zitting Aleksi Orcid -palvelun logo

Master Emma Orcid -palvelun logo

Haddad Momeni Majid

Penttilä Paavo Orcid -palvelun logo

Turunen Rosaliina

Jäämuru Vilma

Publikationstyp

Publikationsform

Artikel

Moderpublikationens typ

Tidning

Artikelstyp

En originalartikel

Målgrupp

Vetenskaplig

Kollegialt utvärderad

Kollegialt utvärderad

UKM:s publikationstyp

A1 Originalartikel i en vetenskaplig tidskrift

Publikationskanalens uppgifter

Volym

17

Nummer

1

Artikelnummer

56

Publikationsforum

90327

Publikationsforumsnivå

2

Öppen tillgång

Öppen tillgänglighet i förläggarens tjänst

Ja

Öppen tillgång till publikationskanalen

Helt öppen publikationskanal

Licens för förläggarens version

CC BY

Parallellsparad

Ja

Publiceringsavgift för öppen tillgång €

2390

Övriga uppgifter

Vetenskapsområden

Materialteknik; Miljöbioteknologi; Biokemi, cell- och molekylärbiologi

Nyckelord

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Förlagets internationalitet

Internationell

Språk

engelska

Internationell sampublikation

Ja

Sampublikation med ett företag

Ja

DOI

10.1186/s13068-024-02500-w

Publikationen ingår i undervisnings- och kulturministeriets datainsamling

Ja