Patent classifications
C07C45/52
Prevention of tissue ischemia and related methods
Provided herein are compositions for preventing, ameliorating, and/or reducing tissue ischemia and/or tissue damage due to ischemia, increasing blood vessel diameter, blood flow and tissue perfusion in the presence of vascular disease including peripheral vascular disease, atherosclerotic vascular disease, coronary artery disease, stroke and influencing other conditions, by suppressing CD47 and/or blocking TSP1 and/or CD47 activity or interaction. Influencing the interaction of CD47-TSP1 in blood vessels allows for control of blood vessel diameter and blood flow, and permits modification of blood pressure and cardiac function. Under conditions of decreased blood flow, for instance through injury or atherosclerosis, blocking TSP1-CD47 interaction allows blood vessels to dilate and increases blood flow, tissue perfusion and tissue survival.
Prevention of tissue ischemia and related methods
Provided herein are compositions for preventing, ameliorating, and/or reducing tissue ischemia and/or tissue damage due to ischemia, increasing blood vessel diameter, blood flow and tissue perfusion in the presence of vascular disease including peripheral vascular disease, atherosclerotic vascular disease, coronary artery disease, stroke and influencing other conditions, by suppressing CD47 and/or blocking TSP1 and/or CD47 activity or interaction. Influencing the interaction of CD47-TSP1 in blood vessels allows for control of blood vessel diameter and blood flow, and permits modification of blood pressure and cardiac function. Under conditions of decreased blood flow, for instance through injury or atherosclerosis, blocking TSP1-CD47 interaction allows blood vessels to dilate and increases blood flow, tissue perfusion and tissue survival.
GLYCERIN-ONLY REACTION FOR ALLYL ALCOHOL PRODUCTION
A process of producing allyl alcohol by reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of gamma-valerolactone (GVL) in a reactor is described. More specifically, a process to produce allyl alcohol, comprising the step of: a) reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of an inert solvent, GVL, in a reactor, and b) collecting the product comprising allyl alcohol.
GLYCERIN-ONLY REACTION FOR ALLYL ALCOHOL PRODUCTION
A process of producing allyl alcohol by reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of gamma-valerolactone (GVL) in a reactor is described. More specifically, a process to produce allyl alcohol, comprising the step of: a) reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of an inert solvent, GVL, in a reactor, and b) collecting the product comprising allyl alcohol.
Glycerin-only reaction for allyl alcohol production
A process of producing allyl alcohol by reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of gamma-valerolactone (GVL) in a reactor is described. More specifically, a process to produce allyl alcohol, comprising the step of: a) reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of an inert solvent, GVL, in a reactor, and b) collecting the product comprising allyl alcohol.
Glycerin-only reaction for allyl alcohol production
A process of producing allyl alcohol by reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of gamma-valerolactone (GVL) in a reactor is described. More specifically, a process to produce allyl alcohol, comprising the step of: a) reacting glycerin with ReO.sub.3—Al.sub.2O.sub.3 in the presence of an inert solvent, GVL, in a reactor, and b) collecting the product comprising allyl alcohol.
Lignin depolymerisation and doxygenation process for obtaining aromatic compounds and their catalytic reaction composition
- Jose Antonio Toledo Antonio ,
- Maria Antonia Cortes Jacome ,
- Isidro MEJIA CENTENO ,
- Jorge Alberto GARCIA MARTINEZ ,
- Jose Escobar Aguilar ,
- Esteban Lopez Salinas ,
- Maria de Lourdes Araceli Mosqueira Mondragon ,
- Miguel Perez Luna ,
- Carlos Angeles Chavez ,
- Jaime Sanchez Valente ,
- Maria de Lourdes Alejandra GUZMAN CASTILLO ,
- Ana Karina MEDINA MENDOZA
The present invention is related to a catalytic process, which includes catalytic compositions for depolymerisation and deoxygenation of lignin contained in the biomass for obtaining aromatic hydrocarbons. The catalytic composition consists of at least one non-noble element from group VIIIB of the periodic table supported on a mesoporous matrix composed of an inorganic oxide, which can be alumina surface-modified with a second inorganic oxide with the object of inhibiting the interaction between the active component and the support. The process of lignin depolymerisation consists of dissolving lignin in a mixture of protic liquids, reacting it|a reaction system by batch or in continuous flow at inert and/or reducing atmosphere, at a temperature of between 60 to 320° C. and a pressure of from 5 to 90 kg/cm.sup.2. When the reaction is developed into a batch system, oxygenated aromatic hydrocarbons are mainly produced, both by thermal as well as catalytic depolymerisation, whereas in a continuous flow reaction system, deoxygenated aromatic hydrocarbons are produced.
Lignin depolymerisation and doxygenation process for obtaining aromatic compounds and their catalytic reaction composition
- Jose Antonio Toledo Antonio ,
- Maria Antonia Cortes Jacome ,
- Isidro MEJIA CENTENO ,
- Jorge Alberto GARCIA MARTINEZ ,
- Jose Escobar Aguilar ,
- Esteban Lopez Salinas ,
- Maria de Lourdes Araceli Mosqueira Mondragon ,
- Miguel Perez Luna ,
- Carlos Angeles Chavez ,
- Jaime Sanchez Valente ,
- Maria de Lourdes Alejandra GUZMAN CASTILLO ,
- Ana Karina MEDINA MENDOZA
The present invention is related to a catalytic process, which includes catalytic compositions for depolymerisation and deoxygenation of lignin contained in the biomass for obtaining aromatic hydrocarbons. The catalytic composition consists of at least one non-noble element from group VIIIB of the periodic table supported on a mesoporous matrix composed of an inorganic oxide, which can be alumina surface-modified with a second inorganic oxide with the object of inhibiting the interaction between the active component and the support. The process of lignin depolymerisation consists of dissolving lignin in a mixture of protic liquids, reacting it|a reaction system by batch or in continuous flow at inert and/or reducing atmosphere, at a temperature of between 60 to 320° C. and a pressure of from 5 to 90 kg/cm.sup.2. When the reaction is developed into a batch system, oxygenated aromatic hydrocarbons are mainly produced, both by thermal as well as catalytic depolymerisation, whereas in a continuous flow reaction system, deoxygenated aromatic hydrocarbons are produced.
Process for preparing pentenoate
The invention pertains to a process for preparing a compound of formula (1) ##STR00001## wherein R.sub.1 is independently chosen from C.sub.1-C.sub.6 alkyl, cycloalkyl, aralkyl and aryl, and R.sub.2, R.sub.3 and R.sub.4 are independently chosen from hydrogen and C.sub.1-C.sub.6 alkyl, cycloalkyl, aralkyl and aryl; which process comprises the steps of: a) contacting a compound of formula (2) ##STR00002## wherein R.sub.1 and R.sub.2 are as above and M.sup.+ is a monovalent metal ion, with a compound of formula (3) ##STR00003## wherein R.sub.3 and R.sub.4 are as above, to form a compound of formula (4) ##STR00004##
and b) followed by contacting the compound of formula (4) with an acid to give a compound of formula (1), wherein step (a) and/or step (b) are conducted in continuous mode.
Process for preparing pentenoate
The invention pertains to a process for preparing a compound of formula (1) ##STR00001## wherein R.sub.1 is independently chosen from C.sub.1-C.sub.6 alkyl, cycloalkyl, aralkyl and aryl, and R.sub.2, R.sub.3 and R.sub.4 are independently chosen from hydrogen and C.sub.1-C.sub.6 alkyl, cycloalkyl, aralkyl and aryl; which process comprises the steps of: a) contacting a compound of formula (2) ##STR00002## wherein R.sub.1 and R.sub.2 are as above and M.sup.+ is a monovalent metal ion, with a compound of formula (3) ##STR00003## wherein R.sub.3 and R.sub.4 are as above, to form a compound of formula (4) ##STR00004##
and b) followed by contacting the compound of formula (4) with an acid to give a compound of formula (1), wherein step (a) and/or step (b) are conducted in continuous mode.