195
Schloss PD, Handelsman J (2006) Toward a census of bacteria in soil. PLoS Comput Biol
2(7):e92
Schneider T, Keiblinger KM, Schmid E, Sterflinger-Gleixner K, Ellersdorfer G, Roschitzki B,
Richter A, Eberl L, Zechmeister-Boltenstern S, Riedel K (2012) Who is who in litter decomposition? Metaproteomics reveals major microbial players and their biogeochemical functions.
ISME J 6:1749–1762
Schnitzer M, Barr M, Hartenstein R (1984) Kinetics and characteristics of humic acids produced
from simple phenols. Soil Biol Biochem 16:371–376
Schöler A, Jacquiod S, Vestergaard G, Schulz S, Schloter M (2017) Analysis of soil microbial communities based on amplicon sequencing of marker genes. 485–489
Schweiger AK, Cavender-Bares J, Townsend PA, Hobbie SE, Madritch MD, Wang R, Tilman D,
Gamon JA (2018) Plant spectral diversity integrates functional and phylogenetic components
of biodiversity and predicts ecosystem function. Nat Ecol Evol 2:976. https://doi.org/10.1038/
s41559-018-0551-1
Schweitzer JA, Bailey JK, Hart SC, Wimp GM, Chapman SK, Whitham TG (2005) The interaction
of plant genotype and herbivory deccelerate leaf litter decomposition and alter nutrient dynamics. Oikos 110:133–145
Serbin SP, Singh A, McNeil BE, Kingdon CC, Townsend PA (2014) Spectroscopic determination
of leaf morphological and biochemical traits for northern temperate and boreal tree species.
Ecol Appl 24:1651–1669
Serbin SP, Singh A, Desai AR, Dubois SG, Jablonski AD, Kingdon CC, Kruger EL, Townsend
PA (2015) Remotely estimating photosynthetic capacity, and its response to temperature, in
vegetation canopies using imaging spectroscopy. Remote Sens Environ 167, 78–87
Shepherd KD, Vanlauwe B, Gachengo CN, Palm CA (2005) Decomposition and mineralization
of organic residues predicted using near infrared spectroscopy. Plant and Soil 277:315–333.
Shields WJ, Bockheim JG (1981) Deterioration of trembling aspen clones in the Great-Lakes
region. Can J For Res 11:530–537
Smith VC, Bradford MA (2003) Do non-additive effects on decomposition in litter-mix experiments result from differences in resource quality between litters? Oikos 102:235–242
Soriano-Disla JM, Janik LJ, Viscarra Rossel RA, Macdonald LM, McLaughlin MJ (2014) The
performance of visible, near-, and mid-infrared reflectance spectroscopy for prediction of soil
physical, chemical, and biological properties. Appl Spectrosc Rev 49:139–186
Srivastava DS, Cardinale BJ, Downing AL, Duffy JE, Jouseau C, Sankaran M, Wright JP
(2009) Diversity has stronger top-down than bottom-up effects on decomposition. Ecology
90:1073–1083
Stenberg B, Rossel RAV, Mouazen AM, Wetterlind J (2010) Visible and near infrared spectroscopy
in soil science. In: Sparks DL (ed) Advances in agronomy, vol 107, pp 163–215
Talbot JM, Yelle DJ, Nowick J, Treseder KK (2012) Litter decay rates are determined by lignin
chemistry. Biogeochemistry 108:279–295
Tenney FG, Waksman SA (1929) Composition of natural organic materials and their decomposition in the soil. IV. The nature and rapidity of decomposition of the various organic complexes
in different plant materials, under aerobic conditions. Soil Sci 28:55–84
Thers H, Brunbjerg AK, Læssøe T, Ejrnæs R, Bøcher PK, Svenning J (2017) Lidar-derived variables as a proxy for fungal species richness and composition in temperate Northern Europe.
Remote Sens Environ 200:102–113
Thevenot M, Dignac MF, Rumpel C (2010) Fate of lignins in soils: a review. Soil Biol Biochem
42:1200–1211
Tilman D, Reich PB, Knops J, Wedin D, Mielke T, Lehman C (2001) Diversity and productivity in
a long-term grassland experiment. Science 294:843–845
Tilman D, Reich PB, Knops J (2006) Biodiversity and ecosystem stability in a decade-long grassland experiment. Nature 441:629–632
Townsend PA, Foster JR, Chastain RA, Currie WS (2003) Application of imaging spectroscopy to
mapping canopy nitrogen in the forests of the central Appalachian Mountains using Hyperion
and AVIRIS. IEEE Trans Geosci Remote Sens 41:1347–1354
8 Linking Foliar Traits to Belowground Processes
Schloss PD, Handelsman J (2006) Toward a census of bacteria in soil. PLoS Comput Biol
2(7):e92
Schneider T, Keiblinger KM, Schmid E, Sterflinger-Gleixner K, Ellersdorfer G, Roschitzki B,
Richter A, Eberl L, Zechmeister-Boltenstern S, Riedel K (2012) Who is who in litter decomposition? Metaproteomics reveals major microbial players and their biogeochemical functions.
ISME J 6:1749–1762
Schnitzer M, Barr M, Hartenstein R (1984) Kinetics and characteristics of humic acids produced
from simple phenols. Soil Biol Biochem 16:371–376
Schöler A, Jacquiod S, Vestergaard G, Schulz S, Schloter M (2017) Analysis of soil microbial communities based on amplicon sequencing of marker genes. 485–489
Schweiger AK, Cavender-Bares J, Townsend PA, Hobbie SE, Madritch MD, Wang R, Tilman D,
Gamon JA (2018) Plant spectral diversity integrates functional and phylogenetic components
of biodiversity and predicts ecosystem function. Nat Ecol Evol 2:976. https://doi.org/10.1038/
s41559-018-0551-1
Schweitzer JA, Bailey JK, Hart SC, Wimp GM, Chapman SK, Whitham TG (2005) The interaction
of plant genotype and herbivory deccelerate leaf litter decomposition and alter nutrient dynamics. Oikos 110:133–145
Serbin SP, Singh A, McNeil BE, Kingdon CC, Townsend PA (2014) Spectroscopic determination
of leaf morphological and biochemical traits for northern temperate and boreal tree species.
Ecol Appl 24:1651–1669
Serbin SP, Singh A, Desai AR, Dubois SG, Jablonski AD, Kingdon CC, Kruger EL, Townsend
PA (2015) Remotely estimating photosynthetic capacity, and its response to temperature, in
vegetation canopies using imaging spectroscopy. Remote Sens Environ 167, 78–87
Shepherd KD, Vanlauwe B, Gachengo CN, Palm CA (2005) Decomposition and mineralization
of organic residues predicted using near infrared spectroscopy. Plant and Soil 277:315–333.
Shields WJ, Bockheim JG (1981) Deterioration of trembling aspen clones in the Great-Lakes
region. Can J For Res 11:530–537
Smith VC, Bradford MA (2003) Do non-additive effects on decomposition in litter-mix experiments result from differences in resource quality between litters? Oikos 102:235–242
Soriano-Disla JM, Janik LJ, Viscarra Rossel RA, Macdonald LM, McLaughlin MJ (2014) The
performance of visible, near-, and mid-infrared reflectance spectroscopy for prediction of soil
physical, chemical, and biological properties. Appl Spectrosc Rev 49:139–186
Srivastava DS, Cardinale BJ, Downing AL, Duffy JE, Jouseau C, Sankaran M, Wright JP
(2009) Diversity has stronger top-down than bottom-up effects on decomposition. Ecology
90:1073–1083
Stenberg B, Rossel RAV, Mouazen AM, Wetterlind J (2010) Visible and near infrared spectroscopy
in soil science. In: Sparks DL (ed) Advances in agronomy, vol 107, pp 163–215
Talbot JM, Yelle DJ, Nowick J, Treseder KK (2012) Litter decay rates are determined by lignin
chemistry. Biogeochemistry 108:279–295
Tenney FG, Waksman SA (1929) Composition of natural organic materials and their decomposition in the soil. IV. The nature and rapidity of decomposition of the various organic complexes
in different plant materials, under aerobic conditions. Soil Sci 28:55–84
Thers H, Brunbjerg AK, Læssøe T, Ejrnæs R, Bøcher PK, Svenning J (2017) Lidar-derived variables as a proxy for fungal species richness and composition in temperate Northern Europe.
Remote Sens Environ 200:102–113
Thevenot M, Dignac MF, Rumpel C (2010) Fate of lignins in soils: a review. Soil Biol Biochem
42:1200–1211
Tilman D, Reich PB, Knops J, Wedin D, Mielke T, Lehman C (2001) Diversity and productivity in
a long-term grassland experiment. Science 294:843–845
Tilman D, Reich PB, Knops J (2006) Biodiversity and ecosystem stability in a decade-long grassland experiment. Nature 441:629–632
Townsend PA, Foster JR, Chastain RA, Currie WS (2003) Application of imaging spectroscopy to
mapping canopy nitrogen in the forests of the central Appalachian Mountains using Hyperion
and AVIRIS. IEEE Trans Geosci Remote Sens 41:1347–1354
8 Linking Foliar Traits to Belowground Processes
