27 3.2.1 Nickel uptake of N. caerulescens under different concentrations of Ni treatments (Expt. 3.1), 27 3.2.2 Interaction between Ni, Zn, Fe and Co in N. caerulescens (Expt. 3.2), p.28 ,
50 5.2.1 Confirmation of the feasibility of the EDTA-stimulated phloem exudation method (Expt. 5.1), 50 5.2.2 Extraction of phloem exudate from expanding and old leaves of N. caerulescens (Expt. 5.2), p.51 ,
Elemental and metabolite profiling of nickel hyperaccumulators from New Caledonia, Phytochemistry, vol.81, pp.80-89, 2012. ,
DOI : 10.1016/j.phytochem.2012.06.010
URL : https://hal.archives-ouvertes.fr/hal-00745018
Nickel in Plants: I. Uptake Kinetics Using Intact Soybean Seedlings, PLANT PHYSIOLOGY, vol.62, issue.4, pp.563-565, 1978. ,
DOI : 10.1104/pp.62.4.563
Xylem exudate composition and root-to-shoot nickel translocation in Alyssum species, Plant and Soil, vol.67, issue.1-2, pp.59-75, 2013. ,
DOI : 10.1104/pp.67.2.292
Hyperaccumulation of nickel by Alyssum corsicum is related to solubility of Ni mineral species, Plant and Soil, vol.58, issue.1-2, pp.1-13, 2012. ,
DOI : 10.1016/j.chemosphere.2004.10.017
Plant uptake of inorganic waste constituents. Land treatment of hazardous wastes, pp.50-76, 1983. ,
Long-Distance Phloem Transport of Glucosinolates in Arabidopsis, PLANT PHYSIOLOGY, vol.127, issue.1, pp.194-201, 2001. ,
DOI : 10.1104/pp.127.1.194
Isotopic Composition of Zn and Pb Atmospheric Depositions in an Urban/Periurban Area of Northeastern France, Environmental Science & Technology, vol.40, issue.21, pp.40-6594, 2006. ,
DOI : 10.1021/es0609654
Identification of Arabidopsis thaliana phloem RNAs provides a search criterion for phloem-based transcripts hidden in complex datasets of microarray experiments, The Plant Journal, issue.5, pp.55-746, 2008. ,
Simple biological role for nickel, Journal of the American Chemical Society, vol.97, issue.14, pp.4131-4133 ,
Mineral Nutrition of Plants: Principles and Perspectives, Second Edition, 2005. ,
How important is apoplastic zinc xylem loading in Thlaspi caerulescens?, New Phytologist, vol.30, issue.1, pp.4-6, 2002. ,
DOI : 10.1093/jexbot/53.368.535
Uptake and Transport of Radioactive Nickel and Cadmium into Three Vegetables after Wet Aerial Contamination, Journal of Environment Quality, vol.34, issue.5, pp.1497-1507, 2005. ,
DOI : 10.2134/jeq2004.0274
URL : https://hal.archives-ouvertes.fr/hal-01486249
Effect of Rapid Changes in Sink-Source Ratio on Export and Distribution of Products of Photosynthesis in Leaves of Beta vulgaris L. and Phaseolus vulgaris L., PLANT PHYSIOLOGY, vol.66, issue.5, pp.66-945, 1980. ,
DOI : 10.1104/pp.66.5.945
Determination of mass-dependent variations in nickel isotope compositions using double spiking and MC-ICPMS, J. Anal. At. Spectrom., vol.156, issue.1, pp.137-145, 2012. ,
DOI : 10.1016/S0009-2541(98)00191-0
Significance of nickel for plant growth and metabolism, Journal of Plant Nutrition and Soil Science, vol.162, issue.3, pp.241-256, 1999. ,
DOI : 10.1002/(SICI)1522-2624(199906)162:3<241::AID-JPLN241>3.0.CO;2-Q
Fate of nickel and calcium in seedlings of the hyperaccumulator Berkheya coddii during germination, Biologia Plantarum, vol.147, issue.3, pp.59-560, 2015. ,
DOI : 10.1016/j.envpol.2006.08.026
URL : https://hal.archives-ouvertes.fr/hal-01248756
Nickel Isotope Variations in Terrestrial Silicate Rocks and Geological Reference Materials Measured by MC-ICP-MS, Geostandards and Geoanalytical Research, vol.55, issue.3, pp.297-317, 2013. ,
DOI : 10.2138/gsrmg.55.1.197
URL : https://hal.archives-ouvertes.fr/insu-00846624
Identification of lipids and lipid-binding proteins in phloem exudates from Arabidopsis thaliana, Journal of Experimental Botany, vol.27, issue.10, pp.63-3603, 2012. ,
DOI : 10.1146/annurev.pp.27.060176.001541
High- and Low-Affinity Zinc Transport Systems and Their Possible Role in Zinc Efficiency in Bread Wheat, PLANT PHYSIOLOGY, vol.125, issue.1, pp.456-463, 2001. ,
DOI : 10.1104/pp.125.1.456
Ecotypes Help to Identify Candidate Genes for Metal Phytoremediation, Environmental Science & Technology, vol.48, issue.6, pp.48-3344, 2014. ,
DOI : 10.1021/es4042995
Evolution of metal hyperaccumulation required cis-regulatory changes and triplication of HMA4, Nature, vol.13, issue.7193, pp.453-391, 2008. ,
DOI : 10.1101/gr.8.3.195
Minor vein structure and sugar transport in Arabidopsis thaliana, Planta, vol.211, issue.1, pp.105-111, 2000. ,
DOI : 10.1007/s004250000268
A speciation model of essential trace metal ions in phloem, Journal of Inorganic Biochemistry, vol.116, issue.0, pp.140-150, 2012. ,
DOI : 10.1016/j.jinorgbio.2012.07.011
Transporters of ligands for essential metal ions in plants, New Phytologist, vol.147, issue.3, pp.499-506, 2007. ,
DOI : 10.1099/00221287-147-11-2881
) treated with four levels of cadmium, Physiologia Plantarum, vol.278, issue.2, pp.243-255, 2014. ,
DOI : 10.1074/jbc.M309338200
THE DYNAMICS OF GROWTH AND NUTRIENT ACCUMULATION BY FRUITS OF GREVILLEA LEUCOPTERIS MEISSN., A PROTEACEOUS SHRUB, WITH SPECIAL REFERENCE TO THE COMPOSITION OF XYLEM AND PHLOEM SAP, New Phytologist, vol.57, issue.4, pp.511-529, 1983. ,
DOI : 10.1042/bj0570508
Urease assay and ammonia release from leaf tissues, Phytochemistry, vol.22, issue.3, pp.663-667, 1983. ,
DOI : 10.1016/S0031-9422(00)86958-7
Constitutively High Expression of the Histidine Biosynthetic Pathway Contributes to Nickel Tolerance in Hyperaccumulator Plants, THE PLANT CELL ONLINE, vol.17, issue.7, pp.17-2089, 2005. ,
DOI : 10.1105/tpc.104.030577
Sebertia acuminata: A Hyperaccumulator of Nickel from New Caledonia, Science, vol.193, issue.4253, pp.193-579, 1976. ,
DOI : 10.1126/science.193.4253.579
Zinc isotope fractionation during high-affinity and low-affinity zinc transport by the marine diatom Thalassiosira oceanica, Limnology and Oceanography, pp.2710-2714, 2007. ,
Zinc Isotopic Fractionation: Why Organic Matters, Environmental Science & Technology, vol.43, issue.15, pp.43-5747, 2009. ,
DOI : 10.1021/es803012e
Stable Isotopes of Cu and Zn in Higher Plants: Evidence for Cu Reduction at the Root Surface and Two Conceptual Models for Isotopic Fractionation Processes, Environmental Science & Technology, vol.46, issue.5, pp.2652-2660, 2012. ,
DOI : 10.1021/es202587m
URL : https://hal.archives-ouvertes.fr/hal-01268399
Cellular compartmentation of nickel in the hyperaccumulators Alyssum lesbiacum, Alyssum bertolonii and Thlaspi goesingense, Journal of Experimental Botany, vol.52, issue.365, pp.52-2291, 2001. ,
DOI : 10.1046/j.1365-3040.2000.00569.x
Tissue- and Age-Dependent Differences in the Complexation of Cadmium and Zinc in the Cadmium/Zinc Hyperaccumulator Thlaspi caerulescens (Ganges Ecotype) Revealed by X-Ray Absorption Spectroscopy, PLANT PHYSIOLOGY, vol.134, issue.2, pp.748-757, 2004. ,
DOI : 10.1104/pp.103.032953
Effects of Ca2+ and other divalent cations on uptake of Ni2+ by excised barley roots, Physiologia Plantarum, vol.3, issue.1, pp.49-54, 1987. ,
DOI : 10.1016/0160-9327(84)90040-1
: Implications for Polymetallic Phytomining and Phytoremediation, International Journal of Phytoremediation, vol.5, issue.3, pp.235-279, 2003. ,
DOI : 10.1080/713779223
The Role of Free Histidine in Xylem Loading of Nickel in Alyssum lesbiacum and Brassica juncea, PLANT PHYSIOLOGY, vol.131, issue.2, pp.716-724, 2003. ,
DOI : 10.1104/pp102.010686
Enhancement of Phloem Exudation from Cut Petioles by Chelating Agents, PLANT PHYSIOLOGY, vol.53, issue.1, pp.96-103, 1974. ,
DOI : 10.1104/pp.53.1.96
Histidine promotes the loading of nickel and zinc, but not of cadmium, into the xylem in Noccaea caerulescens, 2014. ,
Metal Hyperaccumulation in Plants, Annual Review of Plant Biology, vol.61, issue.1, pp.517-534, 2010. ,
DOI : 10.1146/annurev-arplant-042809-112156
Micro-PIXE as a technique for studying nickel localization in leaves of the hyperaccumulator plant Alyssum lesbiacum, Physics Research Section B: Beam Interactions with Materials and Atoms, pp.1-4, 1997. ,
DOI : 10.1016/S0168-583X(97)00368-6
Free histidine as a metal chelator in plants that accumulate nickel, Nature, vol.379, issue.6566, pp.379-635, 1996. ,
DOI : 10.1038/379635a0
The Role of Metal Transport and Tolerance in Nickel Hyperaccumulation by Thlaspi goesingense Halacsy, Plant Physiology, vol.115, issue.4, pp.1641-1650, 1997. ,
DOI : 10.1104/pp.115.4.1641
Transport of Rb and Sr to the ear in mature, excised shoots of wheat: Effects of temperature and stem length on Rb removal from the xylem, Plant and Soil, vol.37, issue.2, pp.281-288, 1991. ,
DOI : 10.1093/jxb/37.7.928
Isolation and identification of a citrato-complex of nickel from nickel-accumulating plants, Phytochemistry, vol.16, issue.10, pp.16-1503, 1977. ,
DOI : 10.1016/0031-9422(77)84010-7
The relation between nickel a nd citric acid in some nickel-accumulating plants, Phytochemistry, issue.6, pp.17-1033, 1978. ,
Interaction of nickel and manganese in accumulation and localization in leaves of the Ni hyperaccumulators Alyssum murale and Alyssum corsicum, Plant and Soil, vol.175, issue.Spec., pp.314-349, 2009. ,
DOI : 10.1080/00837792.1996.10670604
Development of a technology for commercial phytoextraction of nickel: economic and technical considerations, Plant and Soil, vol.249, issue.1, pp.107-115, 2003. ,
DOI : 10.1023/A:1022527330401
Transport Across Plant Membranes, Plant solute transport, 2007. ,
DOI : 10.1002/9780470988862.ch5
Root-to-shoot long-distance circulation of nicotianamine and nicotianamine-nickel chelates in the metal hyperaccumulator Thlaspi caerulescens, Journal of Experimental Botany, vol.57, issue.15, pp.57-4111, 2006. ,
DOI : 10.1093/jxb/erl184
URL : https://hal.archives-ouvertes.fr/hal-00124925
Mineral nutrition of higher plants, 1995. ,
Application of quantitative fluorescence and absorption-edge computed microtomography to image metal compartmentalization in Alyssum murale, Environmental Science & Technology, issue.7, pp.39-2210, 2005. ,
The metal transporter PgIREG1 from the hyperaccumulator Psychotria gabriellae is a candidate gene for nickel tolerance and accumulation, Journal of Experimental Botany, vol.271, issue.3, pp.65-1551, 2014. ,
DOI : 10.1074/jbc.271.38.23203
Investigating Heavy-metal Hyperaccumulation using Thlaspi caerulescens as a Model System, Annals of Botany, vol.151, issue.1, pp.3-13, 2008. ,
DOI : 10.1046/j.0028-646x.2001.00213.x
Transport properties of members of the ZIP family in plants and their role in Zn and Mn homeostasis, Journal of Experimental Botany, vol.64, issue.1, pp.369-381, 2013. ,
DOI : 10.1073/pnas.93.6.2454
Phloem Transport of Solutes in Crop Plants in: Handbook of Plant and Crop Physiology, pp.449-465, 2001. ,
Cloning of three ZIP/Nramp transporter genes from a Ni hyperaccumulator plant Thlaspi japonicum and their Ni2+-transport abilities, Plant Physiology and Biochemistry, vol.43, issue.8, pp.43-793, 2005. ,
DOI : 10.1016/j.plaphy.2005.07.006
Identification of nickel chelators in three hyperaccumulating plants: An X-ray spectroscopic study, Phytochemistry, vol.69, issue.8, pp.69-1695, 2008. ,
DOI : 10.1016/j.phytochem.2008.02.009
Comparative Phloem Mobility of Nickel in Nonsenescent Plants, PLANT PHYSIOLOGY, vol.81, issue.2, pp.689-691, 1986. ,
DOI : 10.1104/pp.81.2.689
Farming for metals. Mining Environmental Management, pp.15-16, 1995. ,
Biogeochemistry of Nickel and Its Release into the Environment, pp.1-29, 2007. ,
DOI : 10.1002/9780470028131.ch1
by the nickel-induced iron-deficient response in Arabidopsis, Plant Signaling & Behavior, vol.7, issue.3, pp.329-331, 2012. ,
DOI : 10.1006/meth.2001.1262
AtIRT1, the Primary Iron Uptake Transporter in the Root, Mediates Excess Nickel Accumulation in Arabidopsis thaliana, Plant and Cell Physiology, vol.25, issue.4, pp.52-1433, 2011. ,
DOI : 10.1007/s00299-005-0092-3
Identification of Zn ?nicotianamine and Fe?2?-deoxymugineic acid in the phloem sap from rice plants (Oryza sativa L.). Plant and Cell Physiology, pp.381-390, 2012. ,
Selective Transport of Zinc, Manganese, Nickel, Cobalt and Cadmium in the Root System and Transfer to the Leaves in Young Wheat Plants, Annals of Botany, vol.96, issue.3, pp.425-434, 2005. ,
DOI : 10.1016/S0981-9428(02)01464-X
Heavy metals in white lupin: uptake, root-to-shoot transfer and redistribution within the plant, New Phytologist, vol.14, issue.2, pp.329-341, 2006. ,
DOI : 10.1016/S0981-9428(02)01464-X
Identification of Thlaspi caerulescens Genes That May Be Involved in Heavy Metal Hyperaccumulation and Tolerance. Characterization of a Novel Heavy Metal Transporting ATPase, PLANT PHYSIOLOGY, vol.136, issue.3, pp.3814-3823, 2004. ,
DOI : 10.1104/pp.104.044503
Assessment of plants from the Brassicaceae family as genetic models for the study of nickel and zinc hyperaccumulation, New Phytologist, vol.49, issue.2, pp.248-260, 2006. ,
DOI : 10.1046/j.1365-3040.2000.00569.x
The molecular physiology of heavy metal transport in the Zn/Cd hyperaccumulator Thlaspi caerulescens, Proceedings of the National Academy of Sciences, pp.4956-4960, 2000. ,
DOI : 10.1074/jbc.273.44.28713
Distribution of cadmium and zinc in the hyperaccumulator Thlaspi caerulescens grown on multicontaminated soil, Plant and Soil, vol.249, issue.1, pp.19-25, 2003. ,
DOI : 10.1023/A:1022560711597
URL : https://hal.archives-ouvertes.fr/hal-01486352
Functional activity and role of cation-efflux family members in Ni hyperaccumulation in Thlaspi goesingense, Proceedings of the National Academy of Sciences, pp.98-9995, 2001. ,
DOI : 10.1111/j.1469-8137.1984.tb06108.x
PHYTOREMEDIATION, Annual Review of Plant Biology, vol.56, issue.1, pp.15-39, 2005. ,
DOI : 10.1146/annurev.arplant.56.032604.144214
Changes of Ni biogeochemistry in the rhizosphere of the hyperaccumulator Thlaspi goesingense, Plant and Soil, vol.151, issue.1-2, pp.205-218, 2005. ,
DOI : 10.1007/978-3-662-07745-0_13
Quantitative extraction and high precision isotope measurements of nickel by MC-ICPMS, Journal of Analytical Atomic Spectrometry, vol.37, issue.11, pp.1249-1255, 2006. ,
DOI : 10.6028/jres.094.034
Contribution of apoplast and symplast to short term nickel uptake by maize and Leptoplax emarginata roots, Environmental and Experimental Botany, vol.68, issue.1, pp.99-106, 2010. ,
DOI : 10.1016/j.envexpbot.2009.10.010
URL : https://hal.archives-ouvertes.fr/hal-01486332
Studies on metal uptake by plants from serpentine and non-serpentine populations of Thlaspi goesingense Halacsy (Cruciferae), New Phytologist, vol.98, issue.1, pp.191-204, 1984. ,
Nickel-accumulating plants from the ancient serpentine soils of Cuba, New Phytologist, vol.37, issue.2, pp.217-224, 1996. ,
DOI : 10.5962/bhl.part.25737
Uptake of Nickel by Species of Alyssum, Bornmuellera, and Other Genera of Old World Tribus Alysseae, Taxon, vol.32, issue.2, pp.184-192, 1983. ,
DOI : 10.2307/1221970
Redistribution of Nickel, Cobalt, Manganese, Zinc, and Cadmium via the Phloem in Young and Maturing Wheat, Journal of Plant Nutrition, vol.14, issue.3, pp.421-430, 2005. ,
DOI : 10.1007/s002540050418
The potential of Thlaspi caerulescens for phytoremediation of contaminated soils, Plant and Soil, vol.203, issue.1, pp.47-56, 1998. ,
DOI : 10.1023/A:1004328816645
Soil Amendments Affecting Nickel and Cobalt Uptake by Berkheya coddii: Potential Use for Phytomining and Phytoremediation, Annals of Botany, vol.84, issue.6, pp.689-694, 1999. ,
DOI : 10.1006/anbo.1999.0970
The potential of the high-biomass nickel hyperaccumulator Berkheya coddii for phytoremediation and phytomining, Journal of Geochemical Exploration, vol.60, issue.2, pp.115-126, 1997. ,
DOI : 10.1016/S0375-6742(97)00036-8
The nickel hyperaccumulator plant Alyssum bertolonii as a potential agent for phytoremediation and phytomining of nickel, Journal of Geochemical Exploration, vol.59, issue.2, pp.75-86, 1997. ,
DOI : 10.1016/S0375-6742(97)00010-1
Uptake and distribution of nickel and other metals in the hyperaccumulator Berkheya coddii, New Phytologist, vol.25, issue.2, pp.279-285, 2003. ,
DOI : 10.1046/j.1365-3040.2000.00569.x
The double spike toolbox, Chemical Geology, vol.265, issue.3-4, pp.3-4, 2009. ,
DOI : 10.1016/j.chemgeo.2009.05.010
As Determined Using X-ray Absorption Spectroscopy, Environmental Science & Technology, vol.33, issue.5, pp.713-717, 1999. ,
DOI : 10.1021/es980825x
PHYTOREMEDIATION, Annual Review of Plant Physiology and Plant Molecular Biology, vol.49, issue.1, pp.643-668, 1998. ,
DOI : 10.1146/annurev.arplant.49.1.643
AtIREG2 encodes a tonoplast transport protein involved in iron-dependent nickel detoxification in Arabidopsis thaliana roots, Journal of Biological Chemistry, issue.35, pp.281-25532, 2006. ,
Speciation analysis of nickel in the latex of a hyperaccumulating tree Sebertia acuminata by HPLC and CZE with ICP MS and electrospray MS-MS detection, Journal of Analytical Atomic Spectrometry, vol.18, issue.2, pp.120-127, 2003. ,
DOI : 10.1039/b209819a
URL : https://hal.archives-ouvertes.fr/hal-00291351
Transport of metal micronutrients in the phloem of castor bean (Ricinus communis) seedlings, Physiologia Plantarum, vol.36, issue.1, pp.147-153, 1995. ,
DOI : 10.1034/j.1399-3054.1993.880318.x
Do roots or shoots control cadmium accumulation in the hyperaccumulator Noccaea caerulescens?, Plant and Soil, vol.249, issue.1-2, pp.87-99, 2015. ,
DOI : 10.1023/A:1022530217289
URL : https://hal.archives-ouvertes.fr/hal-01512045
Fractionation of Stable Zinc Isotopes in the Field-Grown Zinc Hyperaccumulator Noccaea caerulescens and the Zinc-Tolerant Plant Silene vulgaris, Environmental Science & Technology, issue.18, pp.46-9972, 2012. ,
DOI : 10.1021/es3015056
Hyperaccumulator Alyssum murale relies on a different metal storage mechanism for cobalt than for nickel, New Phytologist, vol.17, issue.4, pp.641-654, 2007. ,
DOI : 10.1080/713608066
Exclusion of metals from the symplasm: A possible mechanism of metal tolerance in higher plants, Journal of Plant Nutrition, vol.10, issue.9, pp.9-16, 1987. ,
DOI : 10.1080/01904168709363649
(Brassicaceae), New Phytologist, vol.1, issue.3, pp.505-514, 2006. ,
DOI : 10.1046/j.1469-8137.2002.00478.x
Collection and Analysis of <em>Arabidopsis</em> Phloem Exudates Using the EDTA-facilitated Method, Journal of Visualized Experiments, issue.80, p.51111, 2013. ,
DOI : 10.3791/51111
Zinc hyperaccumulation in Thlaspi caerulescens. II. Influence on organic acids, Journal of Plant Nutrition, vol.19, issue.12, pp.1541-1550, 1996. ,
DOI : 10.1080/01904169609365220
Multi-element concentrations in plant parts and fluids of Malaysian nickel hyperaccumulator plants and some economic and ecological considerations, Plant and Soil Journal of Chemical Ecology, vol.362, issue.125, pp.319-334, 2015. ,
Isotopic discrimination of zinc in higher plants, New Phytologist, vol.200, issue.3, pp.703-710, 2005. ,
DOI : 10.1016/S0176-1617(88)80112-3
The biological significance of nickel, Journal of Plant Nutrition, vol.105, issue.1-4, pp.345-356, 1981. ,
DOI : 10.1099/00221287-105-2-351
Chemical Forms of Nickel and Cobalt in Phloem of Ricinus communis, Physiologia Plantarum, vol.36, issue.4, pp.440-442, 1979. ,
DOI : 10.1007/BF01347224
L.) grown in continuously flooded Cd-contaminated soil, Soil Science and Plant Nutrition, vol.18, issue.156, pp.445-453, 2010. ,
DOI : 10.1111/j.1747-0765.2010.00481.x
Effect of membrane surface charge on nickel uptake by purified mung bean root protoplasts, Planta, vol.213, issue.5, pp.788-793, 2001. ,
DOI : 10.1007/s004250100555
Selection and Combustion of Ni-Hyperaccumulators for the Phytomining Process, International Journal of Phytoremediation, vol.8, issue.8, pp.16-1058, 2014. ,
DOI : 10.1016/j.jclepro.2010.08.020
URL : https://hal.archives-ouvertes.fr/hal-00943671