Monday, 20 May 2019

Structure of Sesquisabinene Synthase 1, a Terpenoid Cyclase That Generates a Strained [3.1.0] Bridged-Bicyclic Product

                                                                                  

Structure of Sesquisabinene Synthase 1, a Terpenoid Cyclase That Generates a Strained [3.1.0] Bridged-Bicyclic Product


The natural product sesquisabinene is a key component of the fragrant essential oil of the sandalwood tree, currently valued at $5,000/L. Sesquisabinene contains a highly strained [3.1.0] bicyclic ring system and is generated from farnesyl diphosphate in a reaction catalyzed by a class I terpenoid cyclase. To understand how the enzyme directs the formation of a strained hydrocarbon ring system, we now report the X-ray crystal structure of sesquisabinene synthase 1 (SQS1) from the Indian sandalwood tree (Santalum album). Specifically, we report the structure of unliganded SQS1 at 1.90 Å resolution and the structure of its complex with three Mg2+ ions and the inhibitor ibandronate at 2.10 Å resolution. The bisphosphonate group of ibandronate coordinates to all three metal ions and makes hydrogen bond interactions with basic residues at the mouth of the active site. These interactions are similarly required for activation of the substrate diphosphate group to initiate catalysis, although partial occupancy binding of the Mg2+B ion suggests that this structure represents the penultimate metal coordination complex just prior to substrate activation. The structure of the liganded enzyme enables a precise definition of the enclosed active site contour that serves as a template for the cyclization reaction. This contour is very product-like in shape and readily fits an extended conformation of sesquisabinene and its precursor, the homobisabolyl cation. Structural comparisons of SQS1 with epi-isozizaene synthase mutants that also generate sesquisabinene suggest that [3.1.0] ring formation is not dependent on the isoprenoid tail conformation of the homobisabolyl cation.

Friday, 17 May 2019

Get Help with Your Nurse Corps Scholarship Application Today!


Get Help with Your Nurse Corps Scholarship Application Today!

The 2019 Nurse Corps Scholarship Program application cycle will close Tuesday, May 21 at 7:30 p.m. ET. Nurse Corps Scholarship Program staff will be available to address any questions regarding the program components, requirements, and obligations, as well as to support you as you complete the application process. Don’t miss this unique opportunity!
Nurse Corps Scholarship Application Technical Assistance Call
Thursday, May 16
3:00 - 4:30 p.m. ET
Dial-in: 1-888-455-2923 | Passcode: 2458846
Prior to participating, we encourage you to review the 2019 Nurse Corps Scholarship Application and Program Guidance and the Nurse Corps Scholarship Application Webinar Recording, which review the eligibility requirements, application process, and more!

Thursday, 16 May 2019

Cell Division in Tumor Cells

What Is Cancer?
Cancer also called malignancy is an abnormal growth of cells. There are more than 200 different types of cancer, including breast cancer, skin cancer, lung cancer, colon cancer, prostate cancer and lymphoma. Symptoms vary depending on the type. Cancer causes cells to divide uncontrollably. This can result in tumors, damage to the immune system and other impairment that can be fatal. Some cancers can spread to other parts of the body.
Cancer starts when cells change abnormally: cancer start
Cancer starts with changes in one cell or a small group of cells. Cells produce signals to control how much and how often the cells divide. If any of these signals are faulty or missing, cells may start to grow and multiply too much and form a lump called a tumour.
Cancer grows as cells multiply over and over: cancer growth
Benign tumours are made up of cells that are quite similar to normal cells. The cancer cells grow and divide to create more cells and will eventually form a tumour. A tumour may contain millions of cancer cells. All body tissues have a layer (a membrane) that keeps the cells of that tissue inside. This is the basement membrane. Cancer cells can break through this membrane. If this happens, the cancer is called invasive. As the tumour gets bigger, its centre gets further and further away from the blood vessels in the area where it is growing. So the centre of the tumour gets less and less oxygen and nutrients. Like healthy cells, cancer cells cannot live without oxygen and nutrients. So they send out signals, called angiogenic factors, that encourage new blood vessels to grow into the tumour. This is called angiogenesis. Without a blood supply, a tumour can't grow much bigger than a pin head.
Once a cancer can stimulate blood vessel growth, it can grow bigger and rapidly. It stimulates the growth of hundreds of new small blood vessels (capillaries) to bring in nutrients and oxygen. As the tumour grows and takes up more space, it begins to press on the normal body tissue nearby. The tumour growth will force itself through the normal tissue, as in the diagram below. it will squeeze and block small blood vessels in the area. Due to low blood and oxygen levels, some of the normal tissue will begin to die off. This makes it easier for the cancer to continue to push its way through.

Lifestyle is a threat to gut bacteria: Ötzi proves it, study shows

The intestinal microbiome is a delicate ecosystem made up of billions and billions of microorganisms, bacteria in particular, that support ...