GapMind for catabolism of small carbon sources

 

D-xylose catabolism in Herbaspirillum aquaticum IEH 4430

Best path

xylF, xylG, xylH, xdh, xylC, xad, DKDP-dehydrog, HDOP-hydrol, gyaR, glcB

Rules

Overview: Xylose degradation in GapMind is based on MetaCyc pathways I via D-xylulose (link), II via xylitol (link), III or V via 2-dehydro-3-deoxy-D-arabinonate (DKDP) dehydratase (link, link), IV via DKDP aldolase (link), as well as another pathway via DKDP dehydrogenase (PMC6336799).

36 steps (25 with candidates)

Or see definitions of steps

Step Description Best candidate 2nd candidate
xylF ABC transporter for xylose, substrate binding component xylF CEJ45_RS12075 CEJ45_RS18955
xylG ABC transporter for xylose, ATP-binding component xylG CEJ45_RS12070 CEJ45_RS18960
xylH ABC transporter for xylose, permease component xylH CEJ45_RS12065 CEJ45_RS18965
xdh D-xylose dehydrogenase CEJ45_RS18970 CEJ45_RS12055
xylC xylonolactonase CEJ45_RS14270 CEJ45_RS12040
xad D-xylonate dehydratase CEJ45_RS18975 CEJ45_RS09515
DKDP-dehydrog D-2-keto-3-deoxypentoate dehydrogenase CEJ45_RS14265 CEJ45_RS13935
HDOP-hydrol 5-hydroxy-2,4-dioxopentanonate hydrolase CEJ45_RS22965 CEJ45_RS22490
gyaR glyoxylate reductase CEJ45_RS04775 CEJ45_RS14165
glcB malate synthase CEJ45_RS00475 CEJ45_RS01430
Alternative steps:
aldA (glycol)aldehyde dehydrogenase CEJ45_RS11845 CEJ45_RS11615
aldox-large (glycol)aldehyde oxidoreductase, large subunit
aldox-med (glycol)aldehyde oxidoreductase, medium subunit
aldox-small (glycol)aldehyde oxidoreductase, small subunit CEJ45_RS09995 CEJ45_RS18930
araS component of Arabinose, fructose, xylose porter
araT component of Arabinose, fructose, xylose porter
araU component of Arabinose, fructose, xylose porter
araV component of Arabinose, fructose, xylose porter CEJ45_RS19130 CEJ45_RS18040
DKDP-aldolase 2-dehydro-3-deoxy-D-arabinonate aldolase CEJ45_RS09910
dopDH 2,5-dioxopentanonate dehydrogenase CEJ45_RS23125 CEJ45_RS15340
Echvi_1871 sodium/xylose cotransporter
gal2 galactose/glucose/xylose uniporter
glcP glucose/mannose/xylose:H+ symporter
gtsA xylose ABC transporter, periplasmic substrate-binding component GtsA CEJ45_RS13305
gtsB xylose ABC transporter, permease component 1 GtsB CEJ45_RS14550
gtsC xylose ABC transporter, permease component 2 GtsC CEJ45_RS14545
gtsD xylose ABC transporter, ATPase component GtsD CEJ45_RS09505 CEJ45_RS13850
kdaD 2-keto-3-deoxy-D-arabinonate dehydratase CEJ45_RS14260
xdhA xylitol dehydrogenase CEJ45_RS09195 CEJ45_RS11770
xylA xylose isomerase
xylB xylulokinase CEJ45_RS16795 CEJ45_RS09180
xylE_Tm ABC transporter for xylose, substrate binding component xylE
xylF_Tm ABC transporter for xylose, permease component xylF CEJ45_RS12005 CEJ45_RS11930
xylK_Tm ABC transporter for xylose, ATP binding component xylK CEJ45_RS12010 CEJ45_RS11935
xylT D-xylose transporter
xyrA xylitol reductase CEJ45_RS09430 CEJ45_RS14710

Confidence: high confidence medium confidence low confidence
transporter – transporters and PTS systems are shaded because predicting their specificity is particularly challenging.

This GapMind analysis is from Sep 24 2021. The underlying query database was built on Sep 17 2021.

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About GapMind

Each pathway is defined by a set of rules based on individual steps or genes. Candidates for each step are identified by using ublast (a fast alternative to protein BLAST) against a database of manually-curated proteins (most of which are experimentally characterized) or by using HMMer with enzyme models (usually from TIGRFam). Ublast hits may be split across two different proteins.

A candidate for a step is "high confidence" if either:

where "other" refers to the best ublast hit to a sequence that is not annotated as performing this step (and is not "ignored").

Otherwise, a candidate is "medium confidence" if either:

Other blast hits with at least 50% coverage are "low confidence."

Steps with no high- or medium-confidence candidates may be considered "gaps." For the typical bacterium that can make all 20 amino acids, there are 1-2 gaps in amino acid biosynthesis pathways. For diverse bacteria and archaea that can utilize a carbon source, there is a complete high-confidence catabolic pathway (including a transporter) just 38% of the time, and there is a complete medium-confidence pathway 63% of the time. Gaps may be due to:

GapMind relies on the predicted proteins in the genome and does not search the six-frame translation. In most cases, you can search the six-frame translation by clicking on links to Curated BLAST for each step definition (in the per-step page).

For more information, see:

If you notice any errors or omissions in the step descriptions, or any questionable results, please let us know

by Morgan Price, Arkin group, Lawrence Berkeley National Laboratory