Sustainable from the very beginning: rational design of molecules by life cycle engineering as an important approach for green pharmacy and green chemistry
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[1] Paul Gerhard Rieger,et al. Xenobiotics in the environment: present and future strategies to obviate the problem of biological persistence. , 2002, Journal of biotechnology.
[2] Z. H. Li,et al. A light-inactivated antibiotic. , 2000, Journal of medicinal chemistry.
[3] P. Schöberl. Basic Principles of LAS Biodegradation , 1989 .
[4] V. Gilard,et al. Determination of the urinary excretion of ifosfamide and its phosphorated metabolites by phosphorus-31 nuclear magnetic resonance spectroscopy , 2004, Cancer Chemotherapy and Pharmacology.
[5] E. Fasani,et al. Structure and Medium‐Dependent Photodecomposition of Fluoroquinolone Antibiotics , 1998, Photochemistry and photobiology.
[6] J. Fernández-Bolaños,et al. New trends in pest control: the search for greener insecticides , 2005 .
[7] F. Lombardo,et al. Experimental and computational approaches to estimate solubility and permeability in drug discovery and development settings. , 2001, Advanced drug delivery reviews.
[8] G Klopman,et al. META V. A model of photodegradation for the prediction of photoproducts of chemicals under natural-like conditions. , 2001, Chemosphere.
[9] C. Pretti,et al. Acute toxicity of ionic liquids to the zebrafish (Danio rerio) , 2006 .
[10] B. Schink,et al. Prediction of biodegradability from structure: Imidazoles , 2002, SAR and QSAR in environmental research.
[11] Martin Scheringer,et al. Sustainable chemistry: starting points and prospects , 2003, Naturwissenschaften.
[12] J. Dearden. Descriptors and techniques for quantitative structure-biodegradability studies. , 1996, SAR and QSAR in environmental research.
[13] K Kümmerer,et al. Biodegradability of antineoplastic compounds in screening tests: influence of glucosidation and of stereochemistry. , 2000, Chemosphere.
[14] C. D. de Wit,et al. Levels and trends of brominated flame retardants in the Arctic. , 2006, Chemosphere.
[15] S Dimitrov,et al. Quantitative prediction of biodegradability, metabolite distribution and toxicity of stable metabolites , 2002, SAR and QSAR in environmental research.
[16] Frank Wania,et al. Potential of degradable organic chemicals for absolute and relative enrichment in the Arctic. , 2006, Environmental science & technology.
[17] F. Diederich,et al. Structure‐Based Design, Synthesis, and in vitro Evaluation of Nonpeptidic Neprilysin Inhibitors , 2004, Chembiochem : a European journal of chemical biology.
[18] H. Rosenkranz,et al. Environmental persistence of chemicals and their carcinogenic risks to humans. , 2003, Mutation research.
[19] M. Scheringer. New Ethical and Scientific Concepts for Risk Assessment , 2002 .
[20] A. Latała,et al. Marine toxicity assessment of imidazolium ionic liquids: acute effects on the Baltic algae Oocystis submarina and Cyclotella meneghiniana. , 2005, Aquatic toxicology.
[21] A. Al-Ahmad,et al. Biodegradability of the Anti‐tumour Agents 5‐Fluorouracil, Cytarabine, and Gemcitabine: Impact of the Chemical Structure and Synergistic Toxicity with Hospital Effluent , 1997 .
[22] J. Damborský. A mechanistic approach to deriving quantitative structure-activity relationship models for microbial degradation of organic compounds. , 1996, SAR and QSAR in environmental research.
[23] P. Anastas,et al. Green Chemistry , 2018, Environmental Science.
[24] B. Ondruschka,et al. Biological effects of imidazolium ionic liquids with varying chain lengths in acute Vibrio fischeri and WST-1 cell viability assays. , 2004, Ecotoxicology and environmental safety.
[25] J. Cairns,et al. Aquatic toxicology. Part 2 , 1990 .
[26] J. Boos,et al. Urinary excretion of the enantiomers of ifosfamide and its inactive metabolites in children , 2004, Cancer Chemotherapy and Pharmacology.
[27] Thomas Steger-Hartmann,et al. Biodegradability of the anti-tumour agent ifosfamide and its occurrence in hospital effluents and communal sewage , 1997 .
[28] Frauke Stock,et al. Progress in evaluation of risk potential of ionic liquids—basis for an eco-design of sustainable products , 2005 .
[29] Gilles Klopman,et al. Computer-assisted evaluation of anaerobic biodegradation products , 1998 .
[30] Patrick Linke,et al. Towards sustainability and green chemical engineering: tools and technology requirements , 2004 .
[31] Uwe Schneidewind,et al. 10 Years after Rio—Concepts on the Contribution of Chemistry to a Sustainable Development , 2002 .
[32] Karlheinz Ballschmiter,et al. Man-made chemicals found in remote areas of the world: The experimental definition for POPs , 2002, Environmental science and pollution research international.
[33] Willie J.G.M. Peijnenburg,et al. Prediction of biodegradability from chemical structure: Modeling of ready biodegradation test data , 1999 .
[34] R. Kallenborn. Persistent organic pollutants (POPs) as environmental risk factors in remote high-altitude ecosystems. , 2006, Ecotoxicology and environmental safety.
[35] A. Calafat,et al. Perfluorinated chemicals in selected residents of the American continent. , 2006, Chemosphere.
[36] Klaus Kümmerer,et al. The Ecological Impact of Time , 1996 .