| Literature DB >> 28232840 |
Maria F Nieto-Jacobo1, Johanna M Steyaert1, Fatima B Salazar-Badillo2, Dianne Vi Nguyen1, Michael Rostás1, Mark Braithwaite1, Jorge T De Souza3, Juan F Jimenez-Bremont4, Mana Ohkura5, Alison Stewart6, Artemio Mendoza-Mendoza1.
Abstract
Trichoderma species are soil-borne filamentous fungi widely utilized for their many plant health benefits, such as conferring improved growth, disease resistance and abiotic stress tolerance to their hosts. Many Trichoderma species are able to produce the auxin phytohormone indole-3-acetic acid (IAA), and its production has been suggested to promote root growth. Here we show that the production of IAA is strain dependent and diverse external stimuli are associated with its production. In in vitro assays, Arabidopsis primary root length was negatively affected by the interaction with some Trichoderma strains. In soil experiments, a continuum effect on plant growth was shown and this was also strain dependent. In plate assays, some strains of Trichoderma spp. inhibited the expression of the auxin reporter gene DR5 in Arabidopsis primary roots but not secondary roots. When Trichoderma spp. and A. thaliana were physically separated, enhancement of both shoot and root biomass, increased root production and chlorophyll content were observed, which strongly suggested that volatile production by the fungus influenced the parameters analyzed. Trichoderma strains T. virens Gv29.8, T. atroviride IMI206040, T. sp. "atroviride B" LU132, and T. asperellum LU1370 were demonstrated to promote plant growth through volatile production. However, contrasting differences were observed with LU1370 which had a negative effect on plant growth in soil but a positive effect in plate assays. Altogether our results suggest that the mechanisms and molecules involved in plant growth promotion by Trichoderma spp. are multivariable and are affected by the environmental conditions.Entities:
Keywords: 3-indole-acetic acid; 6-PP; Trichoderma; auxins; plant growth promotion; volatile organic compounds
Year: 2017 PMID: 28232840 PMCID: PMC5299017 DOI: 10.3389/fpls.2017.00102
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Figure 1Influence of Fresh weight of A. thaliana plants after 4 weeks interaction with Trichoderma. (B) Morphology of plant seedlings in co-culture with T. atroviride IMI206040 or T. asperellum LU1370.
Figure 2Effect of A. thaliana seedlings after 5 d growth in the presence of Trichoderma. (B) Experiment 1—primary root length. (C) Experiment 1—number of emerged lateral roots per plant. (D) Experiment 1—root density. (E) Experiment 2—primary root length. (F) Experiment 2—number of emerged lateral roots per plant. (G) Experiment 2—root density.
Figure 3Histochemical analysis of GUS activity driven by the DR5 promoter in the . DR5::GUS expression levels in the Primary root (PR) and Secondary root (SR) tips. Scale bar, 100 μm.
Figure 4GFP expression in . DIC = differential interference contrast. Fluo = fluorescence microscopy.
Figure 5Indoles derivatives recovered from supernatants of Basal medium was MS. The standards used for identification of indole derivatives are indicated in the first 6 lanes. Samples incubated for 48 h with or without tryptophan are presented. (B) Basal medium was PDB. IAA was used as a standard in the first and last lane.
Figure 6Effect of indole-derivatives on DR5::GUS expression in 5-day-old DR5::GUS expression in leaves and primary roots after treatment with ethyl acetate (control) or 1 μM indole-3-acetic acid (IAA) for 12 h. (B) DR5::GUS expression in leaves inoculated with 10 μL of supernatant from Trichoderma grown in MS supplemented or not with 10 mM Tryptophan. (C) DR5::GUS expression in leaves inoculated with 10 μL of supernatant from Trichoderma grown in PDB supplemented or not with 10 mM Tryptophan.
Figure 7Effect of Morphology of 14-day old seedlings co-inoculated or not with Trichoderma spp. in double compartment plates. A close-up of roots morphology from each interaction is illustrated in right panel. Scale bar corresponds to 0.5 mm. (B) Shoot biomass. (C) Root biomass. (D) Total biomass. (E) Magnified view of leaves exposed to Trichoderma spp. volatiles. Scale bar corresponds 0.5 mm. (F) Chlorophyll content of leaves exposed to Trichoderma spp. volatiles.
Volatiles produced by .
| 1 | C8 | Octane | 800 | 800 | 1.2E+05 | 3.5E+04 |
| 2 | C8 | 1,3-Octadiene | 824 | 829 | 2.0E+06 | 7.8E+05 |
| 3 | Others | 4-Heptanone | 874 | 860 | 9.7E+04 | 1.2E+04 |
| 4 | Others | Nonane | 899 | 900 | 7.1E+04 | 3.0E+04 |
| 5 | C8 | 2-Octanone | 958 | 964 | 5.7E+05 | 3.2E+04 |
| 6 | C8 | (Z)-1,5-Octadien-3-ol | 977 | – | 7.1E+05 | 1.1E+05 |
| 7 | C8 | 1-Octen-3-ol | 982 | 980 | 2.0E+07 | 6.2E+06 |
| 8 | C8 | 3-Octanone | 988 | 987 | 9.6E+06 | 1.3E+06 |
| 9 | Others | 2-Pentylfuran | 993 | 981 | 8.9E+05 | 9.3E+04 |
| 10 | Others | Unknown compund [m/z 105, 162] | 1310 | – | 1.6E+05 | 1.3E+04 |
| 11 | ST | α-Bergamotene | 1445 | 1434 | 3.1E+05 | 5.7E+04 |
| 12 | ST | Sesquisabinene B + β-Acoradiene | 1461 + 1464 | 1446 + 1465 | 5.6E+05 | 2.0E+05 |
| 13 | Others/ST | 6-Pentyl-α-pyrone + Neocallitropsene | 1471 + 1474 | 1469 + 1475 | 3.1E+06 | 1.9E+06 |
| 14 | ST | epi-Zonarene | 1492 | 1494 | 9.6E+05 | 2.6E+05 |
| 15 | ST | β-Eudesmol | 1623 | 1641 | 2.4E+05 | 6.8E+04 |
| 16 | ST | Valerianol | 1642 | 1647 | 1.3E+06 | 2.5E+05 |
ST (sesquiterpene), C8 (C8 compound), Others (other class of compounds).
RI exp: experimentally determined retention index.
RI ref: retention index reported in literature.
Volatiles produced by .
| 1 | C8 | Octane | 800 | 800 | 1.2E+05 | 1.0E+04 |
| 2 | Others | 2-Heptanone | 891 | 889 | 1.3E+07 | 2.3E+05 |
| 3 | Others | Nonane | 899 | 900 | 1.9E+05 | 3.2E+04 |
| 4 | C8 | 2-Octanone | 958 | 964 | 4.5E+05 | 3.1E+04 |
| 5 | C8 | 1-Octen-3-ol | 982 | 980 | 3.4E+06 | 3.5E+05 |
| 6 | C8 | 3-Octanone | 988 | 987 | 4.9E+06 | 3.7E+05 |
| 7 | Others | 2-Pentyl furan | 993 | 981 | 4.4E+06 | 6.7E+05 |
| 8 | MT | Limonene | 1032 | 1025 | 6.6E+05 | 2.1E+04 |
| 9 | Others | 2-n-Heptyl furan | 1196 | 1196 | 3.7E+05 | 7.8E+04 |
| 10 | Others | Unknown compund [m/z 105, 162] | 1310 | – | 1.4E+05 | 1.0E+04 |
| 11 | ST | α-Bergamotene | 1445 | 1434 | 2.6E+05 | 5.0E+04 |
| 12 | ST | Sesquisabinene B + β-Acoradiene | 1461 + 1464 | 1446 + 1465 | 3.7E+05 | 1.0E+05 |
| 13 | Others/ST | 6-Pentyl-α-pyrone | 1471 | 1469 | 1.1E+08 | 4.4E+07 |
| 14 | ST | epi-Zonarene | 1492 | 1494 | 1.4E+06 | 5.4E+05 |
| 15 | ST | β-Eudesmol | 1623 | 1641 | 1.4E+05 | 2.0E+04 |
| 16 | ST | Valerianol | 1642 | 1647 | 1.1E+06 | 7.3E+04 |
C8 (C8 compound), MT (monoterpene), ST (sesquiterpene), Others (other class of compounds).
RI exp: experimentally determined retention index.
RI ref: retention index reported in literature.
Volatiles produced by .
| 1 | MT | Myrcene | 991 | 987 | 4.4E+06 | 6.9E+05 |
| 2 | Ester | 2-Pentenoic acid, 4,4-dimethyl-, methyl ester | 1019 | – | 1.5E+06 | 1.0E+05 |
| 3 | MT | Limonene | 1031 | 1025 | 5.5E+05 | 2.9E+05 |
| 4 | MT | (E)-β-Ocimene | 1039 | 1041 | 2.1E+05 | 2.4E+04 |
| 5 | Ester | Hexanoic acid, 2-ethyl-, methyl ester | 1045 | 1043 | 3.0E+05 | 1.5E+04 |
| 6 | MT | Linalool | 1102 | 1086 | 3.6E+05 | 2.8E+04 |
| 7 | ST | Bicycloelemene | 1346 | 1338 | 7.7E+05 | 2.0E+05 |
| 8 | ST | β-Cubebene | 1390 | 1390 | 8.7E+05 | 1.7E+05 |
| 9 | ST | Cis-β-Elemene | 1395 | 1381 | 3.7E+06 | 8.4E+05 |
| 10 | ST | β-Elemene | 1403 | 1389 | 5.0E+07 | 1.1E+07 |
| 11 | ST | α-Gurjunene | 1424 | 1419 | 2.2E+06 | 4.6E+05 |
| 12 | ST | Tritomarene | 1429 | 1416 | 9.8E+05 | 2.0E+05 |
| 13 | ST | (E)-β-Caryophyllene | 1434 | 1421 | 1.4E+07 | 2.8E+06 |
| 14 | ST | Isogermacrene D | 1443 | 1445 | 8.6E+05 | 1.5E+05 |
| 15 | ST | 4aH,10aH-Guaia-1(5),6-diene | 1448 | 1445 | 9.0E+05 | 1.2E+05 |
| 16 | ST | Aromadendr-9-ene | 1457 | 1463 | 1.8E+06 | 3.6E+05 |
| 17 | ST | Carota-5,8-diene | 1465 | 1465 | 1.7E+06 | 3.9E+05 |
| 18 | ST | α-Humulene | 1470 | 1455 | 1.3E+06 | 1.2E+05 |
| 19 | ST | Germacrene D | 1479 | 1479 | 2.2E+06 | 1.1E+05 |
| 20 | ST | epi-Zonarene | 1488 | 1494 | 1.1E+07 | 1.2E+06 |
| 21 | ST | ε-Amorphene | 1497 | 1498 | 3.0E+07 | 5.1E+06 |
| 22 | ST | Isogermacrene A | 1504 | 1502 | 7.6E+06 | 1.7E+06 |
| 23 | ST | Guaia-1(10),11-diene | 1513 | 1516 | 1.9E+07 | 3.0E+06 |
| 24 | ST | Guaia-9,11-diene | 1522 | 1522 | 4.8E+06 | 3.2E+05 |
| 25 | ST | Unknown sesquiterpene | 1530 | – | 9.5E+06 | 4.7E+05 |
| 26 | ST | ω-Amorphene | 1538 | 1526 | 1.2E+07 | 4.4E+06 |
| 27 | ST | Selina-3,7(11)-diene | 1541 | 1542 | 3.9E+06 | 5.7E+05 |
| 28 | ST | Unknown sesquiterpene | 1547 | – | 1.1E+06 | 2.1E+05 |
| 29 | ST | Unknown sesquiterpene | 1553 | – | 6.0E+05 | 5.5E+04 |
| 30 | ST | γ-Calacorene | 1560 | 1554 | 5.5E+05 | 7.1E+04 |
| 31 | ST | Palustrol | 1589 | 1569 | 1.4E+06 | 2.1E+05 |
| 32 | ST | Ledol | 1613 | 1600 | 2.0E+07 | 2.5E+06 |
| 33 | ST | τ-Muurulol | 1665 | 1633 | 2.3E+06 | 2.1E+05 |
| 34 | ST | Unknown sesquiterpene | 1677 | – | 3.2E+05 | 1.4E+05 |
| 35 | ST | γ-1-Cadinene aldehyde | 1796 | – | 1.4E+05 | 9.1E+03 |
MT (monoterpene), ST (sesquiterpene).
RI exp: experimentally determined retention index.
RI ref: retention index reported in literature.
Volatiles produced by .
| 1 | C8 | Octane | 800 | 800 | 9.5E+04 | 4.9E+03 |
| 2 | C8 | 1,3-Octadiene | 825 | 829 | 2.1E+06 | 3.3E+05 |
| 3 | Others | Nonane | 899 | 900 | 6.5E+04 | 1.1E+04 |
| 4 | Others | 2-Pentyl furan | 993 | 981 | 6.7E+05 | 6.8E+04 |
| 5 | MT | Limonene | 1032 | 1025 | 9.8E+05 | 1.3E+05 |
| 6 | Others | Unknown compund [m/z 105, 162] | 1310 | – | 4.7E+05 | 1.2E+04 |
| 8 | ST | β-Acoradiene | 1464 | 1465 | 2.3E+05 | 6.9E+04 |
| 9 | ST | Neocallitropsene | 1471 | 1469 | 3.6E+05 | 1.1E+05 |
| 10 | ST | epi-Zonarene | 1492 | 1494 | 6.1E+05 | 7.1E+04 |
| 11 | ST | β-Eudesmol + Valerianol | 1642 | 1647 | 1.4E+06 | 1.4E+05 |
| 12 | DT | Isopimara-8, 15-diene | 1924 | 1922 | 2.5E+05 | 1.8E+04 |
| 13 | DT | Unknown diterpene | 1931 | – | 4.4E+05 | 1.7E+04 |
| 14 | DT | Unknown diterpene | 1972 | – | 1.4E+05 | 1.7E+04 |
MT (monoterpene),ST (sesquiterpene), DT (diterpene).
RI exp: experimentally determined retention index.
RI ref: retention index reported in literature.