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        <datestamp>2026-09-17T19:07:13Z</datestamp>
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          <dc:title>Slowdown of Enzymatic Cellulose Conversion Emerges
from Cellulase Mode of Action</dc:title>
          <dc:creator>Manuel Eibinger (1452625)</dc:creator>
          <dc:creator>Gaurav Singh Kaira (9502374)</dc:creator>
          <dc:creator>Bernd Nidetzky (86451)</dc:creator>
          <dc:subject>Space Science</dc:subject>
          <dc:subject>Microbiology</dc:subject>
          <dc:subject>Biotechnology</dc:subject>
          <dc:subject>Evolutionary Biology</dc:subject>
          <dc:subject>Ecology</dc:subject>
          <dc:subject>Astronomical and Space Sciences not elsewhere classified</dc:subject>
          <dc:subject>Biological Sciences not elsewhere classified</dc:subject>
          <dc:subject>Infectious Diseases</dc:subject>
          <dc:subject>surface material utilized</dc:subject>
          <dc:subject>surface material organization</dc:subject>
          <dc:subject>resulting large amounts</dc:subject>
          <dc:subject>nanometer spatial resolution</dc:subject>
          <dc:subject>introduce nanomechanical mapping</dc:subject>
          <dc:subject>findings reveal distinct</dc:subject>
          <dc:subject>bind almost irreversibly</dc:subject>
          <dc:subject>adsorption causes stalling</dc:subject>
          <dc:subject>fungal cellulases results</dc:subject>
          <dc:subject>intrinsic substrate recalcitrance</dc:subject>
          <dc:subject>defined model substrate</dc:subject>
          <dc:subject>reaction slowdown emerges</dc:subject>
          <dc:subject>enzyme adsorption dynamics</dc:subject>
          <dc:subject>using bacterial cellulose</dc:subject>
          <dc:subject>useful conversion efficiencies</dc:subject>
          <dc:subject>specific slowdown mechanisms</dc:subject>
          <dc:subject>substrate degradation imposed</dc:subject>
          <dc:subject>cellulolytic enzyme system</dc:subject>
          <dc:subject>cellulase enzymes required</dc:subject>
          <dc:subject>enzyme factors</dc:subject>
          <dc:subject>specific mode</dc:subject>
          <dc:subject>low dynamics</dc:subject>
          <dc:subject>cellulases assembled</dc:subject>
          <dc:subject>cellulase mode</dc:subject>
          <dc:subject>substrate nanomechanics</dc:subject>
          <dc:subject>enzymatic degradation</dc:subject>
          <dc:subject>cellulose degradation</dc:subject>
          <dc:subject>underlying mechanism</dc:subject>
          <dc:subject>stable complexes</dc:subject>
          <dc:subject>remained unresolved</dc:subject>
          <dc:subject>rate limitation</dc:subject>
          <dc:subject>rapid decline</dc:subject>
          <dc:subject>numerous studies</dc:subject>
          <dc:subject>nanomechanically stiffer</dc:subject>
          <dc:subject>major obstacle</dc:subject>
          <dc:subject>limiting factors</dc:subject>
          <dc:subject>inner core</dc:subject>
          <dc:subject>gradual exposure</dc:subject>
          <dc:subject>functional interplay</dc:subject>
          <dc:subject>early slowing</dc:subject>
          <dc:subject>e .,</dc:subject>
          <dc:subject>densely organized</dc:subject>
          <dc:subject>crystalline cellulose</dc:subject>
          <dc:subject>coupled rate</dc:subject>
          <dc:subject>conversion rate</dc:subject>
          <dc:subject>cellulosic biofuels</dc:subject>
          <dc:subject>cellulose hydrolysis</dc:subject>
          <dc:subject>cellulose fibrils</dc:subject>
          <dc:subject>cellulose due</dc:subject>
          <dc:description>The problem of early slowing of the conversion rate in cellulose
hydrolysis, and the resulting large amounts of cellulase enzymes required
to achieve just useful conversion efficiencies, remains a major obstacle
in the development of cellulosic biofuels. While numerous studies
have implicated both substrate and enzyme factors, the underlying
mechanism of this rate limitation has remained unresolved. Here, using
bacterial cellulose as a well-defined model substrate, we demonstrate
that the reaction slowdown emerges from the specific mode of substrate
degradation imposed by the cellulolytic enzyme system. We introduce
nanomechanical mapping by time-lapse in situ atomic force microscopy
to characterize at nanometer spatial resolution the change in surface
material organization of cellulose due to enzymatic degradation. The
layer-by-layer ablation of surface material utilized by fungal cellulases
results in the gradual exposure of the nanomechanically stiffer (i.e.,
more densely organized and hence more resistant) inner core of the
cellulose fibrils, which leads to a rapid decline in the conversion
rate by these enzymes. Cellulases assembled into stable complexes
(the cellulosome) bind almost irreversibly to cellulose. Low dynamics
of their adsorption causes stalling of the cellulose degradation as
the portion of unproductively bound enzymes increases during the conversion.
Together, these findings reveal distinct, system-specific slowdown
mechanisms and uncover a functional interplay between substrate nanomechanics
and enzyme adsorption dynamics that dictates overall conversion efficiency.
By disentangling these coupled rate-limiting factors, this work establishes
previously unrecognized molecular design principles for engineering
cellulase systems capable of overcoming the intrinsic substrate recalcitrance
of crystalline cellulose.</dc:description>
          <dc:date>2026-03-20T00:00:00Z</dc:date>
          <dc:type>Dataset</dc:type>
          <dc:type>Media</dc:type>
          <dc:identifier>10.1021/acscatal.5c08098.s005</dc:identifier>
          <dc:relation>https://figshare.com/articles/media/Slowdown_of_Enzymatic_Cellulose_Conversion_Emerges_from_Cellulase_Mode_of_Action/31442127</dc:relation>
          <dc:rights>CC BY-NC 4.0</dc:rights>
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