Three New Truffle Species (Tuber, Tuberaceae, Pezizales, and Ascomycota) from Yunnan, China, and Multigen Phylogenetic Arrangement within the Melanosporum Group
Abstract
:1. Introduction
2. Materials and Methods
2.1. Morphological Study
2.2. Molecular Methods
2.3. Sequence Analysis
Cavity | Fungal Taxa | Voucher Specimens | Ascomata Surface | Asci Spore Number | Ascospores | Source | |||
---|---|---|---|---|---|---|---|---|---|
Color | Warts | Q Interval of All Spores, Average Value of All Spores and Main Shape | Size (μm) | Ornamentation | |||||
Yes | Tuber brumale | — | black | penta- or hexagonal flat warts | 3–5 | nd Qm = 1.6 ± 0.1, mainly long ellipsoid | (25.3)–28.1–(33.7) × (15.7)–17.4–(19.1) μm | 3.4 ± 0.38 μm, spino-reticulate | Vittadini (1831) [22] Wang et al. (2006) [34] |
Tuber pseudohimalayense | AH 18331 | black | Pyramidal | 1–7(8) | nd Qm = 1.30 ± 0.09, mainly broadly ellipsoidal, | 1-spored: 34–35 × 25–30 μm 2-spored: 30–34 × 22–30 μm 3–7-spored: — (including the ornamentation) | 4–6(–8) μm, spino-reticulate | Moreno et al. (1997) [36] Wang et al. (2006) [34] Chen & Liu (2011) [33] | |
Tuber melanoumbilicatum | YNAU017 holotype | black | solid, irregular polygonal, pyramidal warts | (1–)2–7 | Q = 1.2–2.0, Qm = 1.65 ± 0.1, mainly long ellipsoid | 1-spored: (42.5–)44.6–48.8(–54.5) × (25.7–)26.6–29.1(–30.2) μm 2-spored: (26.3–)30.9–41.4(–42.2) × (18.2–)18.5–23.9(–24.6) μm 3-spored: (19.2–)20.9–35.4(-36.9) × (13.7–)15.4–22.2(–26.2) μm 4-spored: (21.5–)24.3–31.7(–32.2) – (14.2–)14.9–20.2(–21.4) μm 5-spored: (21.7–)22.2–29.9(–33.1) × (13.1–)14.2–18.1(–20.2) μm 6-spored: (19.2–)21.7–28.0(–29.4) × (11.7)13.1–17.5(–18.9) μm 7-spored: (16.8–)18.9–26.8(–27.4) × (8.8–)12.5–16.3(–16.8) μm | 0.9–8.2 μm, spino-reticulate | This study | |
Tuber pseudobrumale | YAAS L3181 holotype | black | low pyramidal warts | 3–7 | nd Q = 1.27, mainly ellipsoid | 3-spored: 26–30 × 15.5–17.5 μm 4-spored: (22)23–25.5(27) × 14–17 μm 5-spored: (21)22–25(25.4) × 13.5–15(16) μm 6-spored: 21–23.5 × 13–14.5 μm 7-spored: 21–22.5 × 12–14 μm | 4–5 μm spino-reticulate | Li et al. (2014) [41] | |
Tuber melanoexcavatum | YAAS L3605 holotype | black | pyramidal warts | 5–8 | nd Q = 1.19, mainly ellipsoid, | 5-spored: 22–24.7 × 15.4–16.9 μm 6-spored: 21.4–24 × 14.3–16.0 μm 7-spored: 20–22 × 13.5–15.5 μm 8-spored: 18.7–21.2 × 12.6–15.1 μm | 3–4 μm spino-reticulate | Wang et al. (2020) [42] | |
Tuber pseudobrumale | (22 samples shown on Table A1) | black | solid, low, concave, irregular, polygonal warts | 1–6(–8) | Q = 1.1–1.9, Qm = 1.45 ± 0.2, malily ellipsoid | 1-spored: (19.1–)22.4–42.2(–52.3) × (13.8–)16.2–27.8(–36.7) μm 2-spored: (17.5–)21.8–36.3(–42.5) × (12.6–)16.1–23.9(–31.9) μm 3-spored: (13.8–)20.1–26.1(–40.6) × (12.4–)14.7–21.8(–29.0) μm 4-spored: (13.3–)17.9–28.3(–33.9) × (9.6–)13.5–19.3(–26.1) μm 5-spored: (13.0–)17.3–26.5(–32.0) × (9.6–)12.6–18.4(–22.8) μm 6-spored: (11.5–)16.7–25.4(–33.5) × (9.1–)12.3–18.2(–23.3) μm 7-spored: (9.6–)12.8–23.7(–28.4) × (5.6–)9.6–16.1(–18.1) μm 8-spored: (15.9–)18.2–21.9(–22.7) × (10.5–)12.4–15.1(–15.7) μm | 0.4–9.6 μm, spino-reticulate | This study | |
Tuber variabilisporum | BJTC FAN362 holotype | dark brown to black brown | verrucose | 1–5(–6) | Q = 1.06–1.44, nd broadly ellipsoid and ellipsoid | 1-spored: 30–37.5 × 21.75–27.5 μm 2-spored: 27.5–32.5 ×20–23.5 μm 3-spored: 22.5–32.5 × 18.75–21.25 μm 4-spored: 17.5–25.5 ×16.5–20 μm 5-spored: 16.5–22.5 × 13.25–17.5 μm | 3–5 μm, spino-reticulate | Fan et al. (2022) [6] | |
Tuber microexcavatum | YNAU 1263 holotype | yellowish brown | loose-textured, cracked irregular warts | 1–6 | nd nd ellipsoid | nd | nd | This study | |
Tuber sp. 5 | K229 | black | pyramidal warts | 5–8 | Q = 1.0–2.0, nd ellipsoid | 15–20 × 10–15 μm | nd spino-reticulate | Kinoshita et al. (2011) [17] | |
No | Tuber longispinosum | K447 holotype | brown to dark greyish | low polygonal warts | 1–5(–6) | Q = 1.0–2.1, nd ellipsoid to subglobose | 1-spored: 31–41 × 22–30 μm 2-spored: 21–38 × 16–29 μm 3-spored: 19–34 × 15–26 μm 4-spored: 15–33 × 13–22 μm 5-spored: 16–31 × 12–20 μm 6-spored: 15–26 × 13–18 μm | 3–7 (–12) μm, spiny | Kinoshita et al. (2018) [32] |
Tuber yunnanense | YNAU019 holotype | dark brown to black | solid, irregular polygonal, clustered pyramidal ridged warts | 1–5(–6) | Q = 1.1–2.2, Qm = 1.74 ± 0.1, malily long shuttle-shaped | 1-spored: (31.8–)32.3–52.8(–54.6) × (19.1–)20.2–33.1(–35.4) μm 2-spored: (25.4–)30.9–39.8(–43.6) × (15.7–)17.1–22.7(–25.1) μm 3-spored: (26.7–)28.1–35.9(–43.3) × (14.7–)15.4–21.4(–29.4) μm 4-spored: (25.1–)26.1–31.6(–32.7) × (14.3–)14.7–18.3(–20.6) μm 5-spored: (20.0–)20.6–28.2(–28.6) × (11.6–)12.8–17.1(–18.3) μm 6-spored: (22.5–)23.1–28.8(–29.4) × (11.7–)14.0–18.6(–19.2) μm | 0.7–11.1 μm, spiny | This study | |
Tuber regimontanum | ITCV 909 holotype | dark brown to black | pyramidal verrucae | 1–4 | nd nd broadly fusiform to ellipsoid. | 1-spore: 40–55 (–62) × 30–31 μm 2-spore: 37–42 × 25–26 μm 3-spore: 33–37 × 23–26 μm 4-spore: 28–35 × 18–22 μm | 2–5 × 1–2 µm, spino-reticulate | Guevara et al. (2008) [40] | |
Tuber yigongense | BJTC FAN731 holotype | dark brown to blackish | pentagonal and pyramidal warts | 1–5 | nd nd malily ellipsoid | 1-spored: 35–45 × 25–30 μm 2-spored: 30–37.5 × 20–25 μm 3–5-spored: 20–32.5 × 17.5–22.5 μm | 2.5–4 µm, densely spino-reticulate | Fan et al. (2018) [35] | |
Tuber sinense= T. indicum? | MHSU 1633 | brown, reddish brown or deeply brown | verrucose | 1–4 | nd nd malily ellipsoid | 1-spore: 32–36.5 × 43–49.5 μm 2-spores: 26.5–30 × 39–45.5 μm 3-4-spores: 22.5–25 × 30–35 μm (including spines) | 3–6(–7) µm, spiny | Tao et al. (1989) [26] Wang et al. (2006) [34] Chen (2007) [47] Fan et al. (2022) [6] | |
Tuber formosanum | HKAS 62628 | dark reddish brown to dark grayish brown | low pyramidal warts | 1–4(–5) | Q = (1.17–)1.27–1.62(–1.70) nd malily ellipsoid | 1-spored: (27–)29–45(–48) × 20–32(–35) μm 2-spored: (26–)27–36(–39) × (18–)19–24(–28) μm 3-spored: 24–34 × (16–)18–23(–25) μm 4-spored:(25–)26–32(–33) × (17–)18–22 μm | 2–5(–6) µm, spino-reticulate | Qiao et al. (2013) [28] | |
Tuber melanosporum | — | blackish | verrucose | 1–5 | Q = 1.4–2.1 nd malily ellipsoid | 28–32 × 16–21 μm | 2–4 μm.spiny, spino-reticulate | Vittadini (1831) [22] Wang et al. (2006) [34] |
3. Results
3.1. Phylogenetic Analysis
3.2. Taxonomy
3.2.1. Tuber yunnanense S. P. Wan, R. Wang and F.Q. Yu, sp. nov. Figure 2
3.2.2. Tuber melanoumbilicatum S. P. Wan, R. Wang, and F.Q. Yu, sp. nov. Figure 3
3.2.3. Tuber microexcavatum S. P. Wan, R. Wang, and F.Q. Yu, sp. nov. Figure 4
3.2.4. Tuber pseudobrumale Y. Wang and Shu H. Li, Mycol. Prog. 2014, 13, 1157–1163 (Figure 5)
3.2.5. Tuber variabilisporum L. Fan and T. Li, Persoonia-Molecular Phylogeny and Evolution of Fungi. 2022, 48(1): 175–202 (Figure 6)
3.2.6. Tuber pseudohimalayense Moreno G, Díez M and García-Moreno, Mycotaxon. 1997, 63: 217–224 (Figure 6)
4. Discussion
1. Ascomata has a cavity | 2 |
1. Ascomata no a cavity | 3 |
2. Ascomata yellowish brown | T. microexcavatum |
2. Ascomata black | 4 |
3. Spore shape, Q > 1.7 | 5 |
3. Spore shape, Q < 1.7 | 7 |
4. Spore shape, broadly ellipsoidal or ellipsoidal | 6 |
4. Spore shape, long ellipsoid | 8 |
5. Spore shape, mainly long shuttle-shaped | T. yunnanense |
5. Spore shape, mainly ellipsoid | 9 |
6. Spore shape, broadly ellipsoidal | T. pseudohimalayense |
6. Spore shape, mainly ellipsoid | 10 |
7. Height of spore ornamentation, 3–6(–7) µm, spiny | T. sinense |
7. Height of spore ornamentation, 2–5(–6) µm, spino-reticulate | T. formosanum |
8. Height of spore ornamentation, 3.4 ± 0.38 µm, spino-reticulate | T. brumale |
8. Height of spore ornamentation, 0.9–8.2 µm, spino-reticulate | T. melanoumbilicatum |
9. Height of spore ornamentation, spiny | T. longispinosum |
9. Height of spore ornamentation, spino-reticulate | 11 |
10. Height of spore ornamentation, 0.4–9.6 µm, spino-reticulate | T. pseudobrumale |
10. Height of spore ornamentation, spino-reticulate | 12 |
11. Height of spore ornamentation, 2.5–4 µm, densely spino-reticulate | T. yigongense |
11. Height of spore ornamentation, spino-reticulate | 13 |
12. Spore length and width, 15–20 × 10–15 μm | Tuber sp. 5 |
12. Spore length and width, 16.5–37.5 × 13.25–27.5 μm | T. variabilisporum |
13. Spore length and width, 28–55 × 18–31 μm | T. regimontanum |
13. Spore length and width, 28–32 × 16–21 μm | T. melanosporum |
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Taxon Name | Lineage | Voucher Specimen | Country | ITS | LSU | tef1-α | rpb2 |
---|---|---|---|---|---|---|---|
Choiromyces sichuanensis | outgroup | YNAU003, holotype | Sichuan, China | MW380902 | OK576632 | PP092037 | OR832439 |
Choiromyces sichuanensis | outgroup | YNAU004 | Sichuan, China | OK585070 | OK576633 | PP092038 | OR832440 |
Tuber aestivum | aestivum | GB202 | Italy | – | JQ925679 | JX022565 | JQ954487 |
Tuber aestivum | aestivum | JT30500 | Sweden | HM485340 | – | – | JQ954488 |
Tuber borchii | puberulum | BJTC FAN217 | New Zealand | KT067681 | KT067706 | KT067717 | OM584229 |
Tuber borchii | puberulum | GB1/GB32 | Italy | FJ809852 | FJ809799 | JX022571 | JQ954492 |
Tuber brumale | melanosporum | GB52 | Italy | HM485345 | JQ925683 | – | JQ954494 |
Tuber brumale | melanosporum | GB53 | Italy | FJ748900 | JQ925684 | – | JQ954495 |
Tuber californicum | puberulum | JT28058 | USA | HM485346 | JQ925685 | JX022574 | JQ954496 |
Tuber canaliculatum | macrosporum | JT28215 | USA | JQ925643 | – | JX022575 | JQ954497 |
Tuber canaliculatum | macrosporum | OSC59072 | USA | HM485347 | – | JX022576 | JQ954498 |
Tuber crassitunicatum | rufum | BJTC FAN465, holotype | Yunnan, China | MH115295 | OM366205 | OM649610 | OM584268 |
Tuber depressum | excavatum | BJTC FAN340 | Sichuan, China | OM256744 | OM366187 | OM649592 | OM584250 |
Tuber depressum | excavatum | BJTC FAN534 | Sichuan, China | OM256764 | OM366211 | OM649616 | – |
Tuber dryophilum | puberulum | GB35 | Italy | JQ925644 | JQ925687 | JX022577 | – |
Tuber dryophilum | puberulum | GB37 | Italy | HM485354 | JQ925688 | JX022578 | JQ954501 |
Tuber formosanum | melanosporum | BJTC FAN107 | Yunnan, China | MF621549 | OM366159 | OM649564 | OM584210 |
Tuber formosanum | melanosporum | BJTC FAN356 | Sichuan, China | MF627986 | OM366189 | OM649594 | OM584252 |
Tuber glabrum | macrosporum | BJTC FAN228, holotype | Yunnan, China | KF002731 | OM366177 | OM649581 | OM584234 |
Tuber glabrum | macrosporum | BJTC FAN232, paratype | Yunnan, China | KF002727 | OM366179 | OM649583 | OM584236 |
Tuber huidongense | rufum | BJTC FAN104 | Yunnan, China | JF921163 | OM366158 | OM649563 | OM584209 |
Tuber huidongense | rufum | BJTC FAN101 | Yunnan, China | OM311172 | OM366156 | OM649562 | OM584208 |
Tuber jinshajiangense | puberulum | BJTC FAN406 | Yunnan, China | KX575841 | OM366199 | OM649604 | OM584262 |
Tuber jinshajiangense | puberulum | BJTC FAN407 | Yunnan, China | KX575842 | OM366200 | OM649605 | OM584263 |
Tuber liaotongense | rufum | BJTC FAN550 | Beijing, China | MH115302 | OM366213 | OM649618 | OM584272 |
Tuber lijiangense | puberulum | BJTC FAN307 | Yunnan, China | KP276188 | KP276203 | KP276206 | OM584244 |
Tuber lishanense | rufum | BJTC FAN718, holotype | Shanxi, China | MH115303 | MH115304 | OM649622 | OM584276 |
Tuber lishanense | rufum | BJTCFAN683 | Shanxi, China | MH115305 | MH115306 | OM649621 | OM584275 |
Tuber longispinosum | melanosporum | K225 | Japan | AB553414 | AB553518 | AB553538 | AB553558 |
Tuber longispinosum | melanosporum | K447, holotype | Japan | AB553423 | – | – | – |
Tuber macrosporum | macrosporum | JT13362 | Italy | HM485373 | FJ809838 | JX022590 | – |
Tuber magnatum | aestivum | GB12 | Italy | JQ925645 | JQ925700 | JX022591 | JQ954512 |
Tuber magnatum | aestivum | GB13 | Italy | JQ925646 | JQ925701 | JX022592 | JQ954513 |
Tuber melanoexcavatum | melanosporum | YAAS L3605, holotype | Yunnan, China | KY081684 | – | – | – |
Tuber melanoexcavatum | melanosporum | YAAS L3636 | Yunnan, China | KY081685 | – | – | – |
Tuber melanosporum | melanosporum | GB200 | Italy | FJ748904 | JQ925703 | JX022594 | JQ954515 |
Tuber melanoumbilicatum | melanosporum | YNAU017, holotype | Yunnan, China | OK625304 | OR661815 | OR832379 | OR832411 |
Tuber melanoumbilicatum | melanosporum | YNAU018 | Yunnan, China | OK625305 | OR661816 | OR832380 | OR832412 |
Tuber microexcavatum | melanosporum | YNAU1263 | Yunnan, China | OR250184 | OR661838 | OR832381 | OR832413 |
Tuber microexcavatum | melanosporum | YNAU1264 | Yunnan, China | OR250185 | OR661839 | OR832382 | OR832414 |
Tuber neoexcavatum | excavatum | BJTC FAN184, holotype | Yunnan, China | JX458715 | OM366169 | OM649574 | – |
Tuber neoexcavatum | excavatum | BJTC FAN316 | Yunnan, China | OM256741 | OM366184 | OM649589 | OM584247 |
Tuber oligospermum | puberulum | AH38984 | Spain | JN392261 | JN392320 | – | – |
Tuber oligospermum | puberulum | AH37783 | Spain | JN392260 | JN392324 | – | – |
Tuber pseudobrumale | melanosporum | YAAS L3181, holotype | Yunnan, China | KJ742703 | – | – | – |
Tuber pseudobrumale | melanosporum | BJTC FAN306 | Yunnan, China | OM287838 | OM366183 | OM649587 | OM584243 |
Tuber pseudobrumale | melanosporum | BJTC FAN322 | Yunnan, China | OM287839 | OM366186 | OM649591 | OM584249 |
Tuber pseudobrumale | melanosporum | YNAU0126 | Yunnan, China | OR665398 | OR825717 | OR832383 | OR832415 |
Tuber pseudobrumale | melanosporum | YNAU0127 | Yunnan, China | OR665399 | OR661817 | OR832384 | OR832416 |
Tuber pseudobrumale | melanosporum | YNAU0128 | Yunnan, China | OR665400 | OR661818 | OR832385 | OR832417 |
Tuber pseudobrumale | melanosporum | YNAU0145 | Yunnan, China | OR665401 | OR661819 | OR832386 | OR832418 |
Tuber pseudobrumale | melanosporum | YNAU0148 | Yunnan, China | OR665402 | OR661820 | OR832387 | OR832419 |
Tuber pseudobrumale | melanosporum | YNAU0149 | Yunnan, China | OR665403 | OR661821 | OR832388 | OR832420 |
Tuber pseudobrumale | melanosporum | YNAU0150 | Yunnan, China | OR665404 | OR661822 | OR832389 | OR832421 |
Tuber pseudobrumale | melanosporum | YNAU0151 | Yunnan, China | OR665405 | OR661823 | OR832390 | OR832422 |
Tuber pseudobrumale | melanosporum | YNAU0152 | Yunnan, China | OR665406 | OR661824 | OR832391 | OR832423 |
Tuber pseudobrumale | melanosporum | YNAU0179 | Yunnan, China | OR665407 | OR661825 | OR832392 | OR832424 |
Tuber pseudobrumale | melanosporum | YNAU0180 | Yunnan, China | OR665408 | OR661826 | OR832393 | OR832425 |
Tuber pseudobrumale | melanosporum | YNAU0181 | Yunnan, China | OR665409 | OR661827 | OR832394 | OR832426 |
Tuber pseudobrumale | melanosporum | YNAU0221 | Yunnan, China | OR665410 | OR661828 | OR832395 | OR832427 |
Tuber pseudobrumale | melanosporum | YNAU0228 | Yunnan, China | OR665411 | OR661829 | OR832396 | OR832428 |
Tuber pseudobrumale | melanosporum | YNAU0229 | Yunnan, China | OR665412 | OR661830 | OR832397 | OR832429 |
Tuber pseudobrumale | melanosporum | YNAU0230 | Yunnan, China | OR665413 | OR661831 | OR832398 | OR832430 |
Tuber pseudobrumale | melanosporum | YNAU0233 | Yunnan, China | OR665414 | OR661832 | OR832399 | OR832431 |
Tuber pseudobrumale | melanosporum | YNAU0240 | Yunnan, China | OR665415 | OR661833 | OR832400 | OR832432 |
Tuber pseudobrumale | melanosporum | YNAU0275 | Yunnan, China | OR665416 | OR661834 | OR832401 | OR832433 |
Tuber pseudobrumale | melanosporum | YNAU0276 | Yunnan, China | OR665417 | OR661835 | OR832402 | OR832434 |
Tuber pseudobrumale | melanosporum | YNAU0277 | Yunnan, China | OR665418 | OR661836 | OR832403 | OR832435 |
Tuber pseudobrumale | melanosporum | YNAU0885 | Yunnan, China | OR665419 | OR661837 | OR832404 | OR832436 |
Tuber pseudofulgens | excavatum | BJTC FAN399, holotype | Yunnan, China | OM256757 | OM366196 | OM649601 | OM584259 |
Tuber pseudofulgens | excavatum | BJTCFAN388 | Sichuan, China | OM256755 | OM366194 | OM649599 | OM584257 |
Tuber pseudohimalayense | melanosporum | YNAU1608 | Yunnan, China | PP784763 | PP784589 | PP796851 | PP796861 |
Tuber pseudohimalayense | melanosporum | BJTC FAN122 | Sichan, China | MF627983 | OM366162 | OM649567 | OM584213 |
Tuber pseudohimalayense | melanosporum | YNAU1663 | Yunnan, China | PP784764 | PP784590 | PP796852 | PP796862 |
Tuber pseudohimalayense | melanosporum | YNAU1664 | Yunnan, China | PP784765 | PP784591 | PP796853 | PP796863 |
Tuber pseudohimalayense | melanosporum | YNAU1665 | Yunnan, China | PP784766 | PP784592 | PP796854 | PP796864 |
Tuber pseudohimalayense | melanosporum | YNAU1666 | Yunnan, China | PP784767 | PP784593 | PP796855 | PP796865 |
Tuber pseudohimalayense | melanosporum | YNAU1344 | Yunnan, China | PP784768 | PP784594 | PP796856 | PP796866 |
Tuber puberulum | puberulum | ZB1433 | Hungary | JF261382 | JF261346 | – | – |
Tuber puberulum | puberulum | ZB1983 | Hungary | JF261390 | JF261357 | – | – |
Tuber regimontanum | melanosporum | ITCV 909 | Mexico | EU375838 | FJ809823 | JX022600 | JQ954520 |
Tuber shidianense | puberulum | HKAS 88770, holotype | Yunnan, China | KT444595 | KY174960 | OR832405 | OR832437 |
Tuber shidianense | puberulum | HKAS 88771, paratype | Yunnan, China | KT444596 | KY174961 | OR832406 | OR832438 |
Tuber sinense | melanosporum | BJTC FAN108 | China | MF627968 | OM366160 | OM649565 | OM584211 |
Tuber sinense | melanosporum | BJTC FAN110 | China | MF627970 | OM366161 | OM649566 | OM584212 |
Tuber sinoaestivum | aestivum | BJTC FAN522 | Sichuan, China | OM256774 | OM366210 | OM649615 | OM584271 |
Tuber sinoaestivum | aestivum | BJTC FAN487 | Yunnan, China | OM256773 | OM366209 | OM649614 | OM584270 |
Tuber sinoexcavatum | excavatum | BJTC FAN130, holotype | Yunnan, China | JX458717 | OM366163 | OM649568 | OM584216 |
Tuber sinoexcavatum | excavatum | BJTC FAN166 | Yunnan, China | JX458718 | OM366165 | OM649571 | OM584221 |
Tuber sp. 1 | macrosporum | K201 | Japan | AB553344 | AB553512 | AB553532 | AB553552 |
Tuber sp. 5 KA-2010 | melanosporum | K229 | Japan | AB553381 | – | AB553536 | AB553556 |
Tuber sp. 5 KA-2010 | melanosporum | K403 | Japan | AB553382 | – | – | – |
Tuber sphaerosporum | puberulum | JT12487 | USA | FJ809853 | FJ809853 | JX022609 | – |
Tuber taiyuanense | rufum | BJTC FAN164 | Yunnan, China | OM311182 | OM366164 | OM649570 | OM584220 |
Tuber taiyuanense | rufum | BJTC FAN220 | Yunnan, China | MH115315 | OM366174 | OM649578 | OM584231 |
Tuber umbilicatum | rufum | BJTC FAN212 | Yunnan, China | OM311201 | OM366173 | OM649577 | OM584228 |
Tuber umbilicatum | rufum | BJTC FAN230 | Yunnan, China | OM311205 | OM366178 | OM649582 | OM584235 |
Tuber variabilisporum | melanosporum | BJTC FAN362, holotype | Sichuan, China | OM287845 | OM366190 | OM649595 | OM584253 |
Tuber variabilisporum | melanosporum | YNAU0146 | Yunnan, China | PP784759 | PP784585 | PP796847 | PP796857 |
Tuber variabilisporum | melanosporum | YNAU0468 | Yunnan, China | PP784760 | PP784586 | PP796848 | PP796858 |
Tuber variabilisporum | melanosporum | YNAU0925 | Yunnan, China | PP784761 | PP784587 | PP796849 | PP796859 |
Tuber variabilisporum | melanosporum | YNAU1670 | Yunnan, China | PP784762 | PP784588 | PP796850 | PP796860 |
Tuber wenchuanense | rufum | BJTC FAN833 | Shanxi, China | OM311256 | OM366222 | OM649629 | OM584280 |
Tuber yigongense | melanosporum | BJTC FAN729 | Tibet, China | MF663716 | – | OM649623 | OM584277 |
Tuber yigongense | melanosporum | BJTC FAN731, holotype | Tibet, China | MF663714 | OM366216 | – | – |
Tuber yunnanense | melanosporum | YNAU019, holotype | Yunnan, China | OK625306 | OR661811 | OR813081 | OR832407 |
Tuber yunnanense | melanosporum | YNAU020 | Yunnan, China | OK625307 | OR661812 | OR813082 | OR832408 |
Tuber yunnanense | melanosporum | YNAU0107 | Yunnan, China | OR665397 | OR661813 | OR813083 | OR832409 |
Tuber yunnanense | melanosporum | YNAU0491 | Sichuan, China | OR250186 | OR661814 | OR813084 | OR832410 |
References
- Luo, Q.; Zhang, J.; Yan, L.; Tang, Y.; Ding, X.; Yang, Z.; Sun, Q. Composition and antioxidant activity of water-soluble polysaccharides from Tuber indicum. J. Med. Food 2011, 14, 1609–1616. [Google Scholar] [CrossRef] [PubMed]
- Splivallo, R.; Ottonello, S.; Mello, A.; Karlovsky, P. Truffle volatiles: From chemical ecology to aroma biosynthesis. New Phytol. 2011, 189, 688–699. [Google Scholar] [CrossRef] [PubMed]
- Li, S.N.; Li, X.A.; Zhang, Q.; Hu, Y.J.; Lei, H.R.; Guo, D.L.; Jiang, L.S.; Deng, Y. Chemical constitutes from Tuber indicum with immunosuppressive activity uncovered by transcriptome analysis. Fitoterapia 2024, 173, 105773. [Google Scholar] [CrossRef] [PubMed]
- Zambonelli, A.; Iotti, M.; Murat, C. True Truffle (Tuber spp.) in the World; Springer International Publishing: Berlin/Heidelberg, Germany, 2016; pp. 19–104. [Google Scholar]
- Bonito, G.; Smith, M.E.; Nowak, M.; Healy, R.A.; Guevara, G.; Cázares, E.; Kinoshita, A.; Nouhra, E.R.; Domínguez, L.S.; Tedersoo, L.; et al. Historical biogeography and diversification of truffles in the Tuberaceae and their newly identified southern hemisphere sister lineage. PLoS ONE 2013, 8, e52765. [Google Scholar] [CrossRef]
- Fan, L.; Li, T.; Xu, Y.Y.; Yan, X.Y. Species diversity, phylogeny, endemism and geography of the truffle genus Tuber in China based on morphological and molecular data. Persoonia-Mol. Phylogeny Evol. Fungi 2022, 48, 175–202. [Google Scholar] [CrossRef]
- Hall, I.; Brown, G.; Zambonelli, A. Taming the Truffle. The History, Lore, and Science of the Ultimate Mushroom; Timber Press: Portland, OR, USA, 2007; pp. 17–39. [Google Scholar]
- Murat, C.; Payen, T.; Noel, B.; Kuo, A.; Morin, E.; Chen, J.; Kohler, A.; Krizsán, K.; Balestrini, R.; Da Silva, C.; et al. Pezizomycetes genomes reveal the molecular basis of ectomycorrhizal truffle lifestyle. Nat. Ecol. Evol. 2018, 2, 1956–1965. [Google Scholar] [CrossRef]
- Schneider-Maunoury, L.; Leclercq, S.; Clément, C.; Covès, H.; Lambourdière, J.; Sauve, M.; Richard, F.; Selosse, M.A.; Taschen, E. Is Tuber melanosporum colonizing the roots of herbaceous, non-ectomycorrhizal plants? Fungal Ecol. 2018, 31, 59–68. [Google Scholar] [CrossRef]
- Trappe, J.M. The orders, families, and genera of hypogeous Ascomycotina (truffels and their relatives). Mycotaxon 1979, 9, 297–340. [Google Scholar]
- Antony-Babu, S.; Deveau, A.; Van Nostrand, J.D.; Zhou, J.; Le Tacon, F.; Robin, C.; Frey-Klett, P.; Uroz, S. Black truffle-associated bacterial communities during the development and maturation of Tuber melanosporum ascocarps and putative functional roles. Environ. Microbiol. 2014, 16, 2831–2847. [Google Scholar] [CrossRef]
- Albornoz, F.E.; Dixon, K.W.; Lambers, H. Revisiting mycorrhizal dogmas: Are mycorrhizas really functioning as they are widely believed to do? Soil Ecol. Lett. 2021, 3, 73–82. [Google Scholar] [CrossRef]
- Elliott, T.F.; Truong, C.; Jackson, S.M.; Zúñiga, C.L.; Trappe, J.M.; Vernes, K. Mammalian mycophagy: A global review of ecosystem interactions between mammals and fungi. Fungal Syst. Evol. 2022, 9, 99–159. [Google Scholar] [CrossRef] [PubMed]
- Le Tacon, F.; Zeller, B. Dubious intraspecific variability in the Tuber melanosporum genome revealed by sequence analysis of the internal transcribed spacer of the ribosomal DNA. Mycologia 2002, 94, 872–875. [Google Scholar]
- Bonito, G.M.; Gryganskyi, A.P.; Trappe, J.M.; Vilgalys, R. A global meta-analysis of Tuber ITS rDNA sequences: Species diversity, host associations and long-distance dispersal. Mol. Ecol. 2010, 19, 4994–5008. [Google Scholar] [CrossRef] [PubMed]
- Bonito, G.; Trappe, J.M.; Donovan, S.; Vilgalys, R. The Asian black truffle Tuber indicum can form ectomycorrhizas with North American host plants and complete its life cycle in non-native soils. Fungal Ecol. 2011, 4, 83–93. [Google Scholar] [CrossRef]
- Kinoshita, A.; Sasaki, H.; Nara, K. Phylogeny and diversity of Japanese truffles (Tuber spp.) inferred from sequences of four nuclear loci. Mycologia 2011, 103, 779–794. [Google Scholar] [CrossRef]
- Le Tacon, F.; Rubini, A.; Murat, C.; Riccioni, C.; Robin, C.; Belfiori, B.; De la Varga, H.; Akroume, E.; Deveau, A.; Martin, F. Certainties and uncertainties about the life cycle of the Périgord black truffle (Tuber melanosporum Vittad.). Ann. For. Sci. 2016, 73, 105–117. [Google Scholar] [CrossRef]
- Brongniart, J.L.É.A. Tableau des Champignons Fossiles de l’Ecole de Mines de Paris. [Translation: Table of Fossil Mushrooms from the School of Mines of Paris]; École de Mines de Paris: Paris, France, 1831; p. 24. [Google Scholar]
- Mello, A.; Murat, C.; Bonfante, P. Truffles: Much more than a prized and local fungal delicacy. FEMS Microbiol. Lett. 2006, 260, 1–8. [Google Scholar] [CrossRef]
- Riccioni, C.; Belfiori, B.; Rubini, A.; Passeri, V.; Arcioni, S.; Paolocci, F. Tuber melanosporum outcrosses: Analysis of the genetic diversity within and among its natural populations under this new scenario. New Phytol. 2008, 180, 466–478. [Google Scholar] [CrossRef]
- Vittadini, C. Monographia Tuberacearum; Typographia F. Rusconi: Milan, Italy, 1831; pp. 37–42. [Google Scholar]
- Merényi, Z.; Varga, T.; Geml, J.; Orczán, Á.K.; Chevalier, G.; Bratek, Z. Phylogeny and phylogeography of the Tuber brumale aggr. Mycorrhiza 2014, 24, 101–113. [Google Scholar] [CrossRef]
- Cooke, M.C.; Massee, G. Himalayan truffles. Grevillea 1892, 20, 67. [Google Scholar]
- Zhang, B.C.; Minter, D.W. Tuber himalayense sp. nov. with notes on Himalayan truffles. Trans. Br. Mycol. Soc. 1988, 91, 593–597. [Google Scholar] [CrossRef]
- Tao, K.; Liu, B.; Zhang, D.C. A new species of Truffle. J. Shanxi Univ. 1989, 02, 215–218. [Google Scholar]
- Hu, H.D. Tuber formosanum (new species) and its mycorrhizal relationship. Taiwan Univ. Exp. For. Res. Rep. 1992, 6, 79–87. [Google Scholar]
- Qiao, P.; Liu, P.G.; Hu, H.T.; Wang, Y. Typification of Tuber formosanum (Tuberaceae, Pezizales, Ascomycota) from Taiwan, China. Mycotaxon 2013, 123, 293–299. [Google Scholar] [CrossRef]
- Roux, C.; Séjalon-Delmas, N.; Martins, M.; Parguey-Leduc, A.; Dargent, R.; Bécard, G. Phylogenetic relationships between European and Chinese truffles based on parsimony and distance analysis of ITS sequences. FEMS Microbiol. Lett. 1999, 180, 147–155. [Google Scholar] [CrossRef]
- Zhang, L.F.; Yang, Z.L.; Song, D.S. A phylogenetic study of commercial Chinese truffles and their allies: Taxonomic implications. FEMS Microbiol. Lett. 2005, 245, 85–92. [Google Scholar] [CrossRef]
- Feng, B.; Zhao, Q.; Xu, J.; Qin, J.; Yang, Z.L. Drainage isolation and climate change-driven population expansion shape the genetic structures of Tuber indicum complex in the Hengduan Mountains region. Sci. Rep. 2016, 6, 21811. [Google Scholar] [CrossRef]
- Kinoshita, A.; Nara, K.; Sasaki, H.; Feng, B.; Obase, K.; Yang, Z.L.; Yamanaka, T. Using mating-type loci to improve taxonomy of the Tuber indicum complex, and discovery of a new species, T. longispinosum. PLoS ONE 2018, 13, e0193745. [Google Scholar] [CrossRef]
- Chen, J.; Guo, S.X.; Liu, P.G. Species recognition and cryptic species in the Tuber indicum complex. PLoS ONE 2011, 6, e14625. [Google Scholar] [CrossRef]
- Wang, Y.J.; Tan, Z.M.; Murat, C.; Jeandroz, S.; Le Tacon, F. Phylogenetic and populational study of the Tuber indicum complex. Mycol. Res. 2006, 110, 1034–1045. [Google Scholar] [CrossRef]
- Fan, L.; Zhang, J.L.; Li, T.; Sun, H.J.; Xiong, W.P.; Li, Y. Chinese black truffles: Tuber yigongense sp. nov., taxonomic reassessment of T. indicum sl, and re-examination of the T. sinense isotype. Mycotaxon 2018, 133, 183–196. [Google Scholar] [CrossRef]
- Moreno, G.; Manjón, J.L.; Díez, J.; García-Montero, L.G.; Di Massimo, G. Tuber pseudohimalayense sp. nov. An Asiatic species commercialized in Spain, similar to the “Perigord” truffle. Mycotaxon 1997, 63, 217–224. [Google Scholar]
- Wang, Y.J.; Moreno, G.; Riousset, L.J.; Manjón, J.L.; Riousset, G.; Fourre, G.; Massimo, G.D.; Garcia-Montero, L.G.; Diez, J. Tuber pseudoexcavatum sp. nov. a new species from China commercialised in Spain, France and Italy with additional comments on Chinese truffles. Cryptogam. Mycol. 1998, 19, 113–120. [Google Scholar]
- Manjón, J.L.; García-Montero, L.G.; Alvarado, P.; Moreno, G.; Massimo, G.D. Tuber pseudoexcavatum versus T. pseudohimalayense-new data on the molecular taxonomy and mycorrhizae of Chinese truffles. Mycotaxon 2009, 110, 399. [Google Scholar] [CrossRef]
- Chen, J.; Liu, P.G. Delimitation of Tuber pseudohimalayense and T. pseudoexcavatum based on morphological and molecular data. Cryptogam. Mycol. 2011, 32, 83–93. [Google Scholar] [CrossRef]
- Guevara, G.; Bonito, G.; Cázares, E.; Rodríguez, J.; Vilgalys, R.; Trappe, J.M. Tuber regimontanum, new species of truffle from Mexico. Rev. Mex. Micol. 2008, 26, 17–20. [Google Scholar]
- Li, S.H.; Zheng, L.Y.; Liu, C.Y.; Wang, Y.; Li, L.; Zhao, Y.C.; Zhang, X.L.; Yang, M.; Xong, H.K.; Qing, Y.; et al. Two new truffles species, Tuber alboumbilicum and Tuber pseudobrumale from China. Mycol. Prog. 2014, 13, 1157–1163. [Google Scholar] [CrossRef]
- Wang, L.; Tang, S.M.; Zhang, X.; Su, K.; Li, Y.; Yuan, T.; Wang, Y.; Dauner, L.; Li, S. Tuber melanoexcavatum sp. nov., an edible black truffle from China. Phytotaxa 2020, 477, 269–276. [Google Scholar] [CrossRef]
- Kumar, L.M.; Smith, M.E.; Nouhra, E.R.; Orihara, T.; Leiva, P.S.; Pfister, D.H.; McLaughlin, D.J.; Trappe, J.M.; Healy, R.A. A molecular and morphological re-examination of the generic limits of truffles in the Tarzetta-Geopyxis lineage-Densocarpa, Hydnocystis, and Paurocotylis. Fungal Biol. 2017, 121, 264–284. [Google Scholar] [CrossRef]
- Gardes, M.; Bruns, T.D. ITS primers with enhanced specificity for basidiomycetes-application to the identification of mycorrhizae and rusts. Mol. Ecol. 1993, 2, 113–118. [Google Scholar] [CrossRef]
- Katoh, K.; Standley, D.M. MAFFT multiple sequence alignment software version 7: Improvements in performance and usability. Mol. Biol. Evol. 2013, 30, 772–780. [Google Scholar] [CrossRef] [PubMed]
- Hall, T.A. BioEdit: A user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucleic Acids Symp. Ser. 1999, 41, 95–98. [Google Scholar]
- Chen, J. Taxonomy and Phylogeny of the Genus Tuber in China. Ph.D. Thesis, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming, China, 2007. [Google Scholar]
- Wang, Y.J.; Tan, Z.M.; Zhang, D.C.; Murat, C.; Jeandroz, S.; Le Tacon, F. Phylogenetic relationships between Tuber pseudoexcavatum, a Chinese truffle, and other Tuber species based on parsimony and distance analysis of four different gene sequences. FEMS Microbiol. Lett. 2006, 259, 269–281. [Google Scholar] [CrossRef]
- Tulasne, L.R.; Tulasne, C. Fungi Hypogaei; Friedrich Kfincksieck: Paris, France, 1851; pp. 19–22. [Google Scholar]
- Tulasne, L.R.; Tulasne, C. Selecta Fungorum Carpologia; Friedrich Kfincksieck: Paris, France, 1861; pp. 218–243. [Google Scholar]
- Bonito, G.; Smith, M.E. General description of the black truffle (Tuber melanosporum) genome. Methods Mol. Biol. 2012, 862, 47–58. [Google Scholar]
- Bond, J.E.; Stockman, A.K. An integrative method for delimiting cohesion species: Finding the population-species interface in a group of Californian trapdoor spiders with extreme genetic divergence and geographic structuring. Syst. Biol. 2008, 57, 628–646. [Google Scholar] [CrossRef] [PubMed]
- Monsen-Collar, K.J.; Dolcemascolo, P. Using molecular techniques to answer ecological questions. Nat. Educ. Knowl. 2010, 3, 1. [Google Scholar]
- Belfiori, B.; Riccioni, C.; Paolocci, F.; Rubini, A. Mating type locus of Chinese black truffles reveals heterothallism and the presence of cryptic species within the T. indicum species complex. PLoS ONE 2013, 8, e82353. [Google Scholar] [CrossRef]
- Hosford, D.; Pilz, D.; Molina, R. Ecology and Manageent of Commercially Harvested True Morels in the Pacific Northwest, USA: A Review. For. Ecol. Manag. 1997, 4, 145–161. [Google Scholar]
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wang, R.; Dong, G.; Li, Y.; Wang, R.; Yang, S.; Yuan, J.; Xie, X.; Shi, X.; Yu, J.; Pérez-Moreno, J.; et al. Three New Truffle Species (Tuber, Tuberaceae, Pezizales, and Ascomycota) from Yunnan, China, and Multigen Phylogenetic Arrangement within the Melanosporum Group. J. Fungi 2024, 10, 640. https://doi.org/10.3390/jof10090640
Wang R, Dong G, Li Y, Wang R, Yang S, Yuan J, Xie X, Shi X, Yu J, Pérez-Moreno J, et al. Three New Truffle Species (Tuber, Tuberaceae, Pezizales, and Ascomycota) from Yunnan, China, and Multigen Phylogenetic Arrangement within the Melanosporum Group. Journal of Fungi. 2024; 10(9):640. https://doi.org/10.3390/jof10090640
Chicago/Turabian StyleWang, Rui, Gangqiang Dong, Yupin Li, Ruixue Wang, Shimei Yang, Jing Yuan, Xuedan Xie, Xiaofei Shi, Juanbing Yu, Jesús Pérez-Moreno, and et al. 2024. "Three New Truffle Species (Tuber, Tuberaceae, Pezizales, and Ascomycota) from Yunnan, China, and Multigen Phylogenetic Arrangement within the Melanosporum Group" Journal of Fungi 10, no. 9: 640. https://doi.org/10.3390/jof10090640
APA StyleWang, R., Dong, G., Li, Y., Wang, R., Yang, S., Yuan, J., Xie, X., Shi, X., Yu, J., Pérez-Moreno, J., Yu, F., & Wan, S. (2024). Three New Truffle Species (Tuber, Tuberaceae, Pezizales, and Ascomycota) from Yunnan, China, and Multigen Phylogenetic Arrangement within the Melanosporum Group. Journal of Fungi, 10(9), 640. https://doi.org/10.3390/jof10090640