Humans have long taken advantage of the huge variety of medicinal compounds produced by plants. Now MIT chemists have found a new way to expand plants' pharmaceutical repertoire by genetically engineering them to produce unnatural variants of their usual products.

The researchers, led by Associate Professor Sarah O'Connor, have added bacterial genes to the periwinkle plant, enabling it to attach halogens such as chlorine or bromine to a class of compounds called alkaloids that the plant normally produces. Many alkaloids have pharmaceutical properties, and halogens, which are often added to antibiotics and other drugs, can make medicines more effective or last longer in the body.

The team's primary target, an alkaloid called vinblastine, is commonly used to treat cancers such as Hodgkin's lymphoma. O'Connor sees vinblastine and other drugs made by plants as scaffolds that she can modify in a variety of ways to enhance their effectiveness.

"We're trying to use plant biosynthetic mechanisms to easily make a whole range of different iterations of natural products," she said. "If you tweak the structure of natural products, very often you get different or improved biological and pharmacological activity."

O'Connor, graduate student Weerawat Runguphan and former postdoctoral associate Xudong Qu describe their engineered periwinkle plants in the Nov. 3 online edition of Nature. The research was funded by the National Institutes of Health and the American Cancer Society.

Engineering new genes into plants has been done before: In the 1990s, scientists developed corn that could produce an insecticide called Bt, which comes from a bacterial gene. However, O'Connor's approach, known as metabolic engineering, goes beyond simply adding a gene that codes for a novel protein. Metabolic engineers tinker with the series of reactions that the host organisms use to build new molecules, adding genes for new enzymes that reshape these natural synthetic pathways. This can lead to a huge variety of end products.

Most metabolic engineers use bacteria as their host organism, in part because their genes are easier to manipulate. O'Connor's work with plants makes her a rare exception. She doesn't believe one approach is better than the other, but one factor that drew her to engineer plants is that most plant synthetic pathways have not been completely revealed. "You can't reconstitute a whole plant pathway in bacteria unless you have all the genes," she said.

In previous experiments, O'Connor and her students induced periwinkle root cells to create novel compounds by feeding them slightly altered versions of their usual starting materials. In the new study, they engineered the cells to express genes that code for enzymes that attach chlorine or bromine to vinblastine precursors and other alkaloids.

The two new genes came from bacteria that naturally produce halogenated compounds. It's much more rare for plants to generate such compounds on their own, said O'Connor. It is also possible, though very difficult, to synthesize halogenated alkaloids in a laboratory.

To make alkaloids, plants first convert an amino acid called tryptophan into tryptamine. After that initial step, about a dozen more reactions are required, and the plants can produce hundreds of different final products. In the new genetically engineered plants, a bacterial enzyme called halogenase attaches a chlorine (or bromine) atom to tryptamine. That halogen stays on the molecule throughout the synthesis.

In future work, the researchers hope to engineer full periwinkle plants to produce the novel compounds. They are also working on improving the overall yield of the synthesis, which is about 15 fold lower than the plant's yield of naturally occurring alkaloids. One way to do that is to introduce the halogen further along in the process, said O'Connor.

Source: "Integrating Carbon-Halogen Bond Formation into Medicinal Plan Metabolism," by Weerawat Runguphan, Xudong Qu, and Sarah E. O'Connor. Nature, 3 November, 2010

Source: MIT


Tag Cloud

Buy Candesartan without Prescripton Buy Dexamethason without Prescripton Buy Fluconazole without Prescripton Buy Tamsulosin without Prescripton Buy Lisinopril (Prinivil) without Prescripton Buy Diclofenac Potassium without Prescripton Buy Fenobibrate without Prescripton Buy Metformin (Glucophage) without Prescripton Buy Valproic Acid without Prescripton Buy Risperidone (Risperdal) without Prescripton Buy Pyridostigmine without Prescripton Buy Tinidazole without Prescripton Buy Cefdinir without Prescripton Buy Pantoprazole without Prescripton Buy Paracetamol without Prescripton Buy Lithium carbonate without Prescripton Buy Levofloxacin without Prescripton Buy Betamethasone/Clotrimazole without Prescripton Buy Indinavir sulfate (Crixivan) without Prescripton Buy Cefaclor (Cefaclor) without Prescripton Buy Metformin (Glucophage Xr) without Prescripton Buy Chloramphenicol without Prescripton Buy Capecitabine without Prescripton Buy Glipizide (Glucotrol) without Prescripton Buy Albuterol without Prescripton Buy Citalopram without Prescripton Buy Ethinyl estradiol without Prescripton Buy Phenytoin without Prescripton Buy Dimenhydrinate without Prescripton Buy Chlorpromazine without Prescripton Buy Famotidine without Prescripton Buy Clindamycin without Prescripton Buy Topiramate without Prescripton Buy Valsartan (Diovan Hct) without Prescripton Buy Bupropion (Zyban) without Prescripton Buy Glipizide (Glucotrol Xl) without Prescripton Buy Lovastatin without Prescripton Buy Meloxicam without Prescripton Buy Phenazopyridine without Prescripton Buy Allopurinol (Zyloprim) without Prescripton Buy Terbinafine without Prescripton Buy Dutasteride without Prescripton Buy Disulfiram without Prescripton Buy Celecoxib without Prescripton Buy Sumatriptan (Suminat) without Prescripton Buy Nortriptyline Hydrochloride without Prescripton Buy Amiloride without Prescripton Buy Levonorgestrel/Ethinyl estradiol without Prescripton Buy Metoprolol (Toprol Xl) without Prescripton Buy Danazol (Danazol) without Prescripton Buy Verapamil (Calan Sr) without Prescripton Buy Trihexyphenidyl without Prescripton Buy Fluvoxamine without Prescripton Buy Esomeprazole without Prescripton Buy Lomefloxacin without Prescripton Buy Fluvoxamine without Prescripton Buy Mebendazole without Prescripton Buy Carvedilol without Prescripton Buy Verapamil (Isoptin) without Prescripton Buy Escitalopram without Prescripton Buy Nitrofurantoin without Prescripton Buy Mirtazapine without Prescripton Buy Buspirone without Prescripton Buy Losartan/Hydrochlorothiazide without Prescripton Buy Mebendazole without Prescripton Buy Conjugated Estrogens without Prescripton Buy Repaglinide without Prescripton Buy Buspirone without Prescripton Buy Piroxicam without Prescripton Buy Mirtazapine without Prescripton Buy Metoprolol (Beloc) without Prescripton Buy Famotidine without Prescripton Buy Oxybutynin (Ditropan) without Prescripton Buy Theophylline (Theo-24 Cr) without Prescripton Buy Methocarbamol without Prescripton Buy Indinavir sulfate (Crixivan) without Prescripton Buy Montelukast without Prescripton Buy Loratadine without Prescripton Buy Nortriptyline without Prescripton Buy Raloxifene without Prescripton Buy Lisinopril (Prinivil) without Prescripton Buy Nitrofurazone without Prescripton Buy Amoxicillin (Trimox) without Prescripton Buy Ziprasidone without Prescripton Buy Perindopril (Coversyl) without Prescripton Buy Sumatriptan (Imitrex) without Prescripton Buy Famotidine without Prescripton Buy Divalproex without Prescripton Buy Nimodipine without Prescripton Buy Progesterone without Prescripton Buy Ranitidine without Prescripton Buy Finasteride (Fincar) without Prescripton Buy Pioglitazone without Prescripton Buy Perindopril (Aceon) without Prescripton Buy Metoprolol (Beloc) without Prescripton Buy Lomefloxacin without Prescripton Buy Etodolac without Prescripton Buy Lovastatin without Prescripton Buy Azithromycin without Prescripton Buy Misoprostol without Prescripton