| Literature DB >> 31105719 |
Laëtitia Virlouvet1, Fadi El Hage1,2, Yves Griveau1, Marie-Pierre Jacquemot1, Emilie Gineau1, Aurélie Baldy1, Sylvain Legay1, Christine Horlow1, Valérie Combes3, Cyril Bauland3, Carine Palafre4, Matthieu Falque3, Laurence Moreau3, Sylvie Coursol1, Valérie Méchin1, Matthieu Reymond1.
Abstract
The use of lignocellulosic biomass for animal feed or biorefinery requires the optimization of its degradability. Moreover, biomass crops need to be better adapted to the changing climate and in particular to periods of drought. Although the negative impact of water deficit on biomass yield has often been mentioned, its impact on biomass quality has only been recently reported in a few species. In the present study, we combined the mapping power of a maize recombinant inbred line population with robust near infrared spectroscopy predictive equations to track the response to water deficit of traits associated with biomass quality. The population was cultivated under two contrasted water regimes over 3 consecutive years in the south of France and harvested at silage stage. We showed that cell wall degradability and β-O-4-linked H lignin subunits were increased in response to water deficit, while lignin and p-coumaric acid contents were reduced. A mixed linear model was fitted to map quantitative trait loci (QTLs) for agronomical and cell wall-related traits. These QTLs were categorized as "constitutive" (QTL with an effect whatever the irrigation condition) or "responsive" (QTL involved in the response to water deficit) QTLs. Fifteen clusters of QTLs encompassed more than two third of the 213 constitutive QTLs and 13 clusters encompassed more than 60% of the 149 responsive QTLs. Interestingly, we showed that only half of the responsive QTLs co-localized with constitutive and yield QTLs, suggesting that specific genetic factors support biomass quality response to water deficit. Overall, our results demonstrate that water deficit favors cell wall degradability and that breeding of varieties that reconcile improved drought-tolerance and biomass degradability is possible.Entities:
Keywords: cell wall composition; cell wall degradability; constitutive QTL; drought response; maize; quantitative trait locus; responsive QTL
Year: 2019 PMID: 31105719 PMCID: PMC6494970 DOI: 10.3389/fpls.2019.00488
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Characteristics of NIRS calibrations developed for cell wall traits in stover maize plants without ears.
| Cell Wall residues | NDF | %DM | 43.34–69.2 | 57 | 0.983 | 0 | 0.95 | 1.77 |
| Degradability | IVDMD | %DM | 32.3–66.9 | 160 | 0.963 | 38 | 0.93 | 2.22 |
| IVCWRD | %CWR | 25.67–51.02 | 161 | 0.805 | 38 | 0.81 | 3.28 | |
| Lignin content | KL.CWR | %CWR | 11.06–18.67 | 167 | 0.852 | 40 | 0.83 | 0.77 |
| ADL.NDF | %NDF | 3.21–6.91 | 57 | 0.925 | 0 | 0.83 | 0.48 | |
| Lignin structure | bO4 | μmole g−1 KL | 255–1,023 | 168 | 0.893 | 40 | 0.90 | 86.00 |
| bO4.H | μmole g−1 KL | 3–28.5 | 166 | 0.636 | 40 | 0.71 | 4.08 | |
| bO4.G | μmole g−1 KL | 132.15–564.24 | 166 | 0.869 | 40 | 0.88 | 50.80 | |
| bO4.S | μmole g−1 KL | 119.06–540.39 | 166 | 0.855 | 40 | 0.86 | 52.40 | |
| S/G | 0.46–1.68 | 166 | 0.709 | 40 | 0.62 | 0.19 | ||
| PCAest | mg g−1 CWR | 4.66–17.94 | 164 | 0.864 | 39 | 0.78 | 1.71 | |
| FAest | mg g−1 CWR | 2.05–6.92 | 164 | 0.802 | 39 | 0.83 | 0.54 | |
| Faeth | mg g−1 CWR | 1.59–3.88 | 164 | 0.451 | 39 | 0.45 | 0.31 | |
| Structural sugars | CL.NDF | %NDF | 43.42–54.48 | 57 | 0.903 | 0 | 0.78 | 1.52 |
| GLU | %CWR | 28.73–43.35 | 81 | 0.835 | 19 | 0.76 | 3.22 | |
| HC.NDF | %NDF | 39.67–51.89 | 57 | 0.905 | 0 | 0.77 | 1.81 | |
| ARA | %CWR | 3–4.84 | 81 | 0.843 | 19 | 0.77 | 0.26 | |
| GAL | %CWR | 0.6–2.06 | 81 | 0.945 | 19 | 0.93 | 0.15 | |
| XYL | %CWR | 16.64–23.39 | 81 | 0.623 | 19 | 0.70 | 1.08 | |
NDF, neutral detergent fiber; IVDMD, in vitro dry matter degradability; IVCWRD, in vitro cell wall residues degradability; ADL, acid detergent lignin; KL, Klason lignin; PCAest, esterified para-coumaric acid; FAeth, etherified ferulic acid; FAest, esterified ferulic acid; CL, cellulose; HC, hemicellulose; GLU, glucose; ARA, arabinose; GAL, galactose; XYL, xylose.
Agronomical, cell wall composition, and degradability traits for the two parental inbred lines F271 and Cm484.
| Agronomic | Plant height | cm | 172.08d ± 9.73 | 134.06b ± 8.78 | 143.52c ± 11.22 | 122.91a ± 7.94 | 16.6 | 8.3 | 50.2 | 24.3 | 4.91 | 0.17 | 9.59 | 0.57 | 10.25 |
| Yield | t ha−1 | 3.83c ± 0.36 | 2.48b ± 0.39 | 2.43ab ± 0.75 | 2.09c ± 0.45 | 36.6 | 15.7 | 23.69 | 29.43 | 9.23 | 2.16 | 3.18 | 1.22 | 31.06 | |
| Cell Wall residue | NDF | %DM | 52.82b ± 2.01 | 47.83a ± 1.75 | 54.58c ± 2.2 | 52.45b ± 2.14 | 3.3 | 9.7 | 30.99 | 24.02 | 4.99 | 2.65 | 0.60 | 0.38 | 36.36 |
| Degradability | IVDMD | %DM | 46.78a ± 2.38 | 55.68c ± 1.88 | 50.95b ± 2.39 | 56.28c ± 2.35 | 8.9 | 1.1 | 63.2 | 7.81 | 4.13 | 4.11 | 0.04 | 1.11 | 19.59 |
| IVCWRD | %CWR | 30.11a ± 2.25 | 36.49b ± 1.42 | 38.16c ± 2.43 | 43.19d ± 2.31 | 26.7 | 18.4 | 30.27 | 53.06 | 0.47 | 1.08 | 0.76 | 0.39 | 9.18 | |
| Lignin content | KL.CWR | %CWR | 16.41c ± 0.56 | 14.61b ± 0.37 | 14.67b ± 0.4 | 13.3a ± 0.27 | 10.6 | 9.0 | 44.68 | 42.49 | 0.89 | 0.49 | 0.79 | 1.24 | 9.38 |
| ADL.NDF | %NDF | 5.74c ± 0.36 | 4.75b ± 0.21 | 4.66b ± 0.26 | 3.85a ± 0.18 | 18.8 | 18.9 | 38.42 | 48.73 | 0.44 | 1.27 | 1.05 | 0.80 | 9.28 | |
| Lignin structure | bO4 | μmole g−1 KL | 587.81c ± 56.17 | 492.34ab ± 51.9 | 529.41b ± 64.09 | 475.02a ± 71.58 | 9.9 | 3.5 | 24.94 | 6.96 | 2.07 | 4.62 | 2.28 | 3.48 | 55.63 |
| bO4.H | μmole g−1 KL | 15.24b ± 1.27 | 13.94a ± 0.98 | 17.8c ± 1.75 | 17.18c ± 1.15 | 16.6 | 23.2 | 5.82 | 52.22 | 0.68 | 3.63 | 0.69 | 2.81 | 34.13 | |
| bO4.G | μmole g−1 KL | 288.42b ± 34.71 | 240.24a ± 26.35 | 271.06b ± 34.45 | 245.21a ± 36.39 | 6.0 | 2.1 | 23.23 | 0.87 | 2.34 | 8.93 | 2.31 | 2.89 | 59.41 | |
| bO4.S | μmole g−1 KL | 280.66c ± 27.1 | 247.34b ± 29.32 | 242.86ab ± 30.01 | 224.33a ± 38.35 | 13.5 | 9.3 | 11.88 | 17.21 | 1.08 | 5.03 | 1.81 | 3.27 | 59.70 | |
| S/G | 0.95b ± 0.08 | 1.00c ± 0.05 | 0.86a ± 0.06 | 0.90a ± 0.06 | 9.5 | 10.0 | 7.35 | 32.67 | 0.25 | 17.05 | 0.09 | 1.25 | 41.33 | ||
| PCAest | mg g−1 CWR | 14.04c ± 1.24 | 11.43b ± 0.73 | 10.94b ± 0.81 | 8.68a ± 0.66 | 22.1 | 24.1 | 33.23 | 49.45 | 0.19 | 1.25 | 0.49 | 1.56 | 13.80 | |
| FAest | mg g−1 CWR | 3.52b ± 0.34 | 3.51b ± 0.39 | 3.24a ± 0.34 | 3.38ab ± 0.31 | 8.0 | 3.7 | 0.92 | 8.08 | 1.21 | 3.22 | 0.77 | 21.73 | 64.04 | |
| Faeth | mg g−1 CWR | 2.57b ± 0.11 | 2.50a ± 0.13 | 2.50a ± 0.08 | 2.45a ± 0.07 | 2.7 | 2.0 | 7.58 | 6.58 | 0.51 | 22.81 | 0.14 | 22.29 | 40.06 | |
| Structural sugars | CL.NDF | %NDF | 50.38b ± 1.62 | 49.87ab ± 1.2 | 50.24b ± 1.25 | 49.2a ± 0.93 | 0.3 | 1.3 | 8.47 | 2.41. | 1 | 6.88 | 0.06 | 14.33 | 66.84 |
| GLU | %CWR | 39.67c ± 1.23 | 38.01b ± 1.04 | 37.53b ± 0.85 | 36.43a ± 0.99 | 5.4 | 4.2 | 19.32 | 37.87 | 0.86. | 14.64 | 0.18 | 2.65 | 24.46 | |
| HC.NDF | %NDF | 43.84a ± 1.97 | 45.33b ± 1.36 | 45.1b ± 1.39 | 46.98c ± 1.05 | 2.9 | 3.6 | 21 | 16 | 0.27 | 6.39 | 0.10 | 8.67 | 47.53 | |
| ARA | %CWR | 3.30a ± 0.16 | 3.64b ± 0.12 | 3.61b ± 0.12 | 3.89c ± 0.1 | 9.4 | 6.9 | 39.37 | 34.54 | 0.41 | 2.88 | 0.36 | 3.36 | 19.06 | |
| GAL | %CWR | 0.67a ± 0.14 | 0.85b ± 0.14 | 0.93b ± 0.11 | 1.10c ± 0.11 | 38.8 | 29.4 | 20.15 | 42.37 | 0.01 | 4.98 | 0.03 | 6.89 | 25.54 | |
| XYL | %CWR | 19.94b ± 0.71 | 19.38a ± 0.65 | 19.42ab ± 0.79 | 18.99a ± 0.97 | 2.6 | 2.0 | 8.42 | 8.48 | 0.18 | 59.06 | 0.35 | 2.91 | 20.58 | |
NDF, neutral detergent fiber; IVDMD, in vitro dry matter degradability; IVCWRD, in vitro cell wall residues degradability; ADL, acid detergent lignin; KL, Klason lignin; PCAest, esterified para-coumaric acid; FAeth, etherified ferulic acid; FAest, esterified ferulic acid; CL, cellulose; HC, hemicellulose; GLU, glucose; ARA, arabinose; GAL, galactose; XYL, xylose.
When two samples show different letters after the mean, the difference between them is significant (normal letters, P < 0.05).
r.
significant at p < 0.05,
significant at p < 0.01 and
significant at p < 0.001.
Agronomical, cell wall composition, and degradability traits in the RIL progeny.
| Agronomic | Plant height | cm | 149.18 ± 18.59 | 99.16 | 197.97 | 127.07 ± 13.73 | 91.95 | 185.04 | 49.17 | 29.04 | 5.14 | 0.44 | 7.01 | 0.08* | 9.12 | 0.87 |
| Yield | t ha−1 | 3.01 ± 0.92 | 0.92 | 6.50 | 2.18 ± 0.6 | 0.99 | 4.76 | 46.02 | 19.04 | 7.46 | 0.19* | 11.27 | 0.00E+00 | 16.02 | 0.75 | |
| Cell Wall residue | NDF | %DM | 53.14 ± 2.91 | 46.14 | 61.40 | 54.91 ± 2.52 | 48.40 | 60.74 | 45.48 | 6.66 | 15.05 | 1.23 | 8.79 | 0.43 | 22.36 | 0.62 |
| Degradability | IVDMD | %DM | 49.44 ± 2.63 | 44.08 | 56.27 | 53 ± 2.56 | 45.42 | 59.40 | 27.11 | 57.23 | 3.85 | 1.29 | 6.65 | 1.75 | 18.58 | 0.65 |
| IVCWRD | %CWR | 33.42 ± 1.95 | 28.39 | 38.23 | 41.31 ± 2.07 | 35.88 | 46.54 | 31.42 | 55.89 | 2.86 | 1.68 | 3.09 | 0.23 | 7.91 | 0.77 | |
| Lignin content | KL.CWR | %CWR | 15.44 ± 0.56 | 13.85 | 17.17 | 13.9 ± 0.59 | 12.48 | 15.31 | 36.91 | 22.59 | 12.22 | 0.27 | 2.87 | 0.84 | 7.84 | 0.83 |
| ADL.NDF | %NDF | 5.16 ± 0.4 | 4.07 | 6.43 | 4.12 ± 0.42 | 3.03 | 5.08 | 15.06 | 68.05 | 3.26 | 0.08 | 2.82 | 0.32 | 6.61 | 0.88 | |
| Lignin structure | bO4 | μmole g−1 KL | 504.79 ± 63.72 | 313.91 | 652.76 | 482.36 ± 57.45 | 276.36 | 603.11 | 38.32 | 2.66 | 12.76 | 0.00E + 00 | 13.26 | 1.72 | 31.28 | 0.56 |
| bO4.H | μmole g−1 KL | 14.97 ± 1.65 | 9.86 | 21.24 | 18.06 ± 1.35 | 14.01 | 20.62 | 24.43 | 34.03 | 8.51 | 4.81 | 6.33 | 1.19 | 20.71 | 0.56 | |
| bO4.G | μmole g−1 KL | 248.24 ± 34.82 | 132.14 | 329.08 | 254.52 ± 30.07 | 152.30 | 309.80 | 38.2 | 0.15 | 12.29 | 0.76 | 12.86 | 2.87 | 32.85 | 0.57 | |
| bO4.S | μmole g−1 KL | 241.94 ± 32.81 | 132.45 | 334.45 | 217.98 ± 30.2 | 115.28 | 287.12 | 36.04 | 8.46 | 12.57 | 2.12 | 11.85 | 0.95 | 28.01 | 0.54 | |
| S/G | 0.96 ± 0.06 | 0.81 | 1.14 | 0.85 ± 0.07 | 0.70 | 1.05 | 29.76 | 29.28 | 7.49 | 6.07 | 6.91 | 0.31 | 20.18 | 0.66 | ||
| PCAest | mg g−1 CWR | 12.37 ± 1.09 | 9.51 | 14.91 | 9.39 ± 1.13 | 6.64 | 12.42 | 26.43 | 55.61 | 4.48 | 0.15 | 3.2 | 0.63 | 9.49 | 0.82 | |
| FAest | mg g−1 CWR | 3.3 ± 0.4 | 2.16 | 4.37 | 3.17 ± 0.39 | 2.14 | 4.08 | 49.31 | 2.81 | 10.92 | 0.63 | 8.11 | 7.45 | 20.77 | 0.73 | |
| Faeth | mg g−1 CWR | 2.54 ± 0.07 | 2.29 | 2.75 | 2.43 ± 0.07 | 2.26 | 2.65 | 27.54 | 24.96 | 11.54 | 5.45 | 7.58 | 2.73 | 20.21 | 0.53 | |
| Structural sugars | CL.NDF | %NDF | 50.51 ± 1.36 | 47.38 | 54.38 | 49.87 ± 1.44 | 46.44 | 53.92 | 52.38 | 2.55 | 9.47 | 0.12 | 10.35 | 3.26 | 21.87 | 0.74 |
| GLU | %CWR | 38.35 ± 1.02 | 35.16 | 42.51 | 37.19 ± 0.89 | 34.79 | 40.02 | 30.75 | 17.5 | 13.49 | 0.59 | 10.41 | 0.28 | 31.18 | 0.51 | |
| HC.NDF | %NDF | 44.28 ± 1.68 | 39.78 | 48.15 | 46.02 ± 1.8 | 40.87 | 50.53 | 51.33 | 13.43 | 7.41 | 0.07 | 8.37 | 1.67 | 17.72 | 0.79 | |
| ARA | %CWR | 3.45 ± 0.13 | 2.97 | 3.77 | 3.73 ± 0.16 | 3.23 | 4.11 | 34.97 | 38.19 | 7.17 | 0.05 | 5.53 | 0.15 | 13.94 | 0.78 | |
| GAL | %CWR | 0.74 ± 0.1 | 0.38 | 1.01 | 0.96 ± 0.11 | 0.59 | 1.24 | 25.3 | 37.23 | 9.29 | 1.72 | 6.9 | 1.06 | 18.51 | 0.58 | |
| XYL | %CWR | 19.18 ± 0.47 | 16.92 | 20.56 | 19.04 ± 0.38 | 17.85 | 19.89 | 18.79 | 1.28 | 8.32 | 32.83 | 7.04 | 14.79 | 16.95 | 0.49 | |
NDF, neutral detergent fiber; IVDMD, in vitro dry matter degradability; IVCWRD, in vitro cell wall residues degradability; ADL, acid detergent lignin; KL, Klason lignin; PCA, para-coumaric acid; FA, ferulic acid; CL, cellulose; HC, hemicellulose; GLU, glucose; ARA, arabinose; GAL, galactose; XYL, xylose.
r.
significant at p < 0.05,
significant at p < 0.01 and
significant at p < 0.001.
Broad-sense heritability.
Figure 1Principal Component Analysis (PCA) plots and correlation matrix of the investigated traits. (A) Distribution of the cell wall-related traits on the first, second, and third components, explaining 42.14, 21.84, and 16.01% of the variability observed, respectively. (B) Distribution of the F271 × Cm484 RIL progeny lines in Irrigated (blue) and Non-Irrigated (red) scenarios on the principal components PC1, PC2, and PC3. (C) Matrix of Pearson correlation in Irrigated (upper triangle) and Non-Irrigated (lower triangle) scenarios. The positive correlations were in orange and the negative in green, the color scale were from 0 to 1 or −1.
Figure 2Summary of the clusters of constitutive and responsive QTLs identified for agronomic, cell wall composition, degradability, and PCA coordinate components traits. The color corresponds to the allele increasing the traits, F271 in magenta and Cm484 in cyan. The scale of colors represented the effect at the QTL position (Supplemental Table 2) over the variation of the corresponding trait on the RIL progeny lines (see materials and methods). The symbols correspond to co-localization between constitutive and responsive QTLs. The references correspond to: [1] Méchin et al., 2001; [2] Roussel et al., 2002; [3] Cardinal et al., 2003; [4] Fontaine et al., 2003; [5] Krakowsky et al., 2005; [6] Krakowsky et al., 2006; [7] Riboulet et al., 2008a; [8] Barrière et al., 2008; [9] Wei et al., 2009; [10] Truntzler et al., 2010; [11] Lorenzana et al., 2010; [12] Barrière et al., 2012; [13] Courtial et al., 2013; [14] Torres et al., 2015; [15] Leng et al., 2018.