Soil Fauna Activities in Agricultural Greek Landscapes
109
Smirnov, A., Bass, D., Balbahri, L., Berney, C., Blandenier, Q., Chatzinotas, A., Clarholm, M.,
Dunthorn, M., Feest, A., Fernández, L.D., Foissner, W., Fournier, B., Gentekaki, E., Hájek, M,
Helder, J, Jousset, A., Koller, R., Kumar, S., La Terza, A., Lamentowicz, M., Mazei, Y., Santos,
S.S. Seppey, C.V.W., Spiegel, F.W., Walochnik, J., Winding, A., Lara, E.: Soil protistology
rebooted: 30 fundamental questions to start with. Soil Biol. Biochem. 111, 94–103 (2017).
https://doi.org/10.1016/j.soilbio.2017.04.001
67. Ingham, R.E., Trofymow, J.A., Ingham, E.R., Coleman, D.C.: Interactions of bacteria, fungi,
and their nematode grazers: effects on nutrient cycling and plant growth. Ecol. Monogr. 55,
119–140 (1985). https://doi.org/10.2307/1942528
68. Michalsky, R., Pfromm, P.H., Steinfeld, A.: Rational design of metal nitride redox materials
for solar-driven ammonia synthesis. Interface Focus 5, 20140084 (2015). https://doi.org/10.
1098/rsfs.2014.0084
69. Schmidt, A.C., Fraser, L.H., Carlyle, C.N., Bassett, E.R.L.: Does cattle grazing affect ant
abundance and diversity in temperate Grasslands? Rangeland Ecol. Manag. 65, 292–298
(2012). https://doi.org/10.2111/REM-D-11-00100.1
70. Schorpp, Q., Schrader, S.: Dynamic of nematode communities in energy plant cropping
systems. Eur. J. Soil Biol. 78, 92–101 (2017). https://doi.org/10.1016/j.ejsobi.2016.12.002
71. Bamforth, S.S.: Diversity of protozoa. In: Benckiser, G., Schnell, S. (eds.) Biodiversity in
Agricultural Production Systems. Taylor and Francis, Boca Raton, FL (2007)
72. Jäckle, O., Seah, B.K., Tietjen, M., Leisch, N., Liebeke, M., Kleiner, M., Berg, J., GruberVodicka, H.R.: Chemosynthetic symbiont with a drastically reduced genome serves as primary
energy storage in the marine flatworm Paracatenula. PNAS 116, 8505–8514 (2019). https://
doi.org/10.1073/pnas.1818995116
73. Schulenburg, H., Félix, M.A.: The Natural biotic environment of Caenorhabditis elegans.
Genetics 206, 55–86 (2017). https://doi.org/10.1534/genetics.116.195511
74. Cameron, T.C., Plaistow, S., Mugabo, M., Piertney, S.B., Benton, T.G.: Eco-evolutionary
dynamics: experiments in a model system. Adv Ecol. Res 50, 172–201 (2014). https://doi.
org/10.1016/B978-0-12-801374-8.00005-0
75. Chen, C.-G., Chen, T., Hua, B.-Z., Wan, T.-R.: Structure and functions of the ventral tube of
the clover springtail Sminthurus viridis (Collembola: Sminthuridae). Sci. Rep. 9, 897 (2019).
https://doi.org/10.1038/s41598-018-37354-4
76. Scheller, U.: Taxonomic and distributional notes on pauropods from the United States (Myriapoda, Pauropoda: Pauropodidae, Eurypauropodidae) In: Insect Systematics & Evolution,
vol. 16, pp. 237–257 (1985). https://doi.org/10.1163/187631285X00135
77. Tipping, C., Allen, R.T.: Description of two new species of Eosentomon from the Ouachita
Mountains of Arkansas with a key to the species with the 6/4 setal pattern on sterna IX/X
(Protura: Eosentomidae). J. New York Entomol. Soc. 103, 287–301 (1996)
78. Brusca, R.C., Wilson, G.F.: A phylogenetic analysis of the Isopoda with some classificatory
recommendations. Mem. Queensland Museum 31, 143–204 (1991). Brisbane. ISSN 0079–
8835
79. Halaj, J., Cady, A.B.: Diet composition and significance of earthworms as food of harvestmen
(Arachnida: Opiliones). Am. Midland Nat. 143, 487–491 (2000). http://dx.doi.org/10.1674/
0003–0031(2000)143[0487:DCASOE]2.0.CO;2
80. Heiling, A.M., Herberstein, M.E.: The web of Nuctenea sclopetaria (Araneae, Araneidae):
relationship between body size and web design. J. Arachnol. 26, 91–96 (1998). https://doi.
org/10.2307/3544406
81. Stöckli, E.: Literature-based survey on the Swiss fauna of Chilopoda. Soil Organ. 81, 647–669
(2009)
82. Tropea, G., Fet, V., Parmakeli, A., Kotsakioski, P., StahliI, I.: Redescription of Euscorpius
tauricus (C.L. Koch, 1837), with the description of two new related species from Greece
(Scorpiones: Euscorpiidae). Ecol. Mont. 7, 614–638 (2017). www.biotaxa.org/em
83. Haynes, R.J.: Chapter two—nature of the belowground ecosystem and its development during
pedogenesis. Adv. Agron. 127, 43–109 (2014). https://doi.org/10.1016/B978-0-12-8001318.00002-9
109
Smirnov, A., Bass, D., Balbahri, L., Berney, C., Blandenier, Q., Chatzinotas, A., Clarholm, M.,
Dunthorn, M., Feest, A., Fernández, L.D., Foissner, W., Fournier, B., Gentekaki, E., Hájek, M,
Helder, J, Jousset, A., Koller, R., Kumar, S., La Terza, A., Lamentowicz, M., Mazei, Y., Santos,
S.S. Seppey, C.V.W., Spiegel, F.W., Walochnik, J., Winding, A., Lara, E.: Soil protistology
rebooted: 30 fundamental questions to start with. Soil Biol. Biochem. 111, 94–103 (2017).
https://doi.org/10.1016/j.soilbio.2017.04.001
67. Ingham, R.E., Trofymow, J.A., Ingham, E.R., Coleman, D.C.: Interactions of bacteria, fungi,
and their nematode grazers: effects on nutrient cycling and plant growth. Ecol. Monogr. 55,
119–140 (1985). https://doi.org/10.2307/1942528
68. Michalsky, R., Pfromm, P.H., Steinfeld, A.: Rational design of metal nitride redox materials
for solar-driven ammonia synthesis. Interface Focus 5, 20140084 (2015). https://doi.org/10.
1098/rsfs.2014.0084
69. Schmidt, A.C., Fraser, L.H., Carlyle, C.N., Bassett, E.R.L.: Does cattle grazing affect ant
abundance and diversity in temperate Grasslands? Rangeland Ecol. Manag. 65, 292–298
(2012). https://doi.org/10.2111/REM-D-11-00100.1
70. Schorpp, Q., Schrader, S.: Dynamic of nematode communities in energy plant cropping
systems. Eur. J. Soil Biol. 78, 92–101 (2017). https://doi.org/10.1016/j.ejsobi.2016.12.002
71. Bamforth, S.S.: Diversity of protozoa. In: Benckiser, G., Schnell, S. (eds.) Biodiversity in
Agricultural Production Systems. Taylor and Francis, Boca Raton, FL (2007)
72. Jäckle, O., Seah, B.K., Tietjen, M., Leisch, N., Liebeke, M., Kleiner, M., Berg, J., GruberVodicka, H.R.: Chemosynthetic symbiont with a drastically reduced genome serves as primary
energy storage in the marine flatworm Paracatenula. PNAS 116, 8505–8514 (2019). https://
doi.org/10.1073/pnas.1818995116
73. Schulenburg, H., Félix, M.A.: The Natural biotic environment of Caenorhabditis elegans.
Genetics 206, 55–86 (2017). https://doi.org/10.1534/genetics.116.195511
74. Cameron, T.C., Plaistow, S., Mugabo, M., Piertney, S.B., Benton, T.G.: Eco-evolutionary
dynamics: experiments in a model system. Adv Ecol. Res 50, 172–201 (2014). https://doi.
org/10.1016/B978-0-12-801374-8.00005-0
75. Chen, C.-G., Chen, T., Hua, B.-Z., Wan, T.-R.: Structure and functions of the ventral tube of
the clover springtail Sminthurus viridis (Collembola: Sminthuridae). Sci. Rep. 9, 897 (2019).
https://doi.org/10.1038/s41598-018-37354-4
76. Scheller, U.: Taxonomic and distributional notes on pauropods from the United States (Myriapoda, Pauropoda: Pauropodidae, Eurypauropodidae) In: Insect Systematics & Evolution,
vol. 16, pp. 237–257 (1985). https://doi.org/10.1163/187631285X00135
77. Tipping, C., Allen, R.T.: Description of two new species of Eosentomon from the Ouachita
Mountains of Arkansas with a key to the species with the 6/4 setal pattern on sterna IX/X
(Protura: Eosentomidae). J. New York Entomol. Soc. 103, 287–301 (1996)
78. Brusca, R.C., Wilson, G.F.: A phylogenetic analysis of the Isopoda with some classificatory
recommendations. Mem. Queensland Museum 31, 143–204 (1991). Brisbane. ISSN 0079–
8835
79. Halaj, J., Cady, A.B.: Diet composition and significance of earthworms as food of harvestmen
(Arachnida: Opiliones). Am. Midland Nat. 143, 487–491 (2000). http://dx.doi.org/10.1674/
0003–0031(2000)143[0487:DCASOE]2.0.CO;2
80. Heiling, A.M., Herberstein, M.E.: The web of Nuctenea sclopetaria (Araneae, Araneidae):
relationship between body size and web design. J. Arachnol. 26, 91–96 (1998). https://doi.
org/10.2307/3544406
81. Stöckli, E.: Literature-based survey on the Swiss fauna of Chilopoda. Soil Organ. 81, 647–669
(2009)
82. Tropea, G., Fet, V., Parmakeli, A., Kotsakioski, P., StahliI, I.: Redescription of Euscorpius
tauricus (C.L. Koch, 1837), with the description of two new related species from Greece
(Scorpiones: Euscorpiidae). Ecol. Mont. 7, 614–638 (2017). www.biotaxa.org/em
83. Haynes, R.J.: Chapter two—nature of the belowground ecosystem and its development during
pedogenesis. Adv. Agron. 127, 43–109 (2014). https://doi.org/10.1016/B978-0-12-8001318.00002-9
