Showing posts with label blood vessels. Show all posts
Showing posts with label blood vessels. Show all posts

Monday, 30 July 2012

Blood pressure continued

Part two: why do we need such high blood pressure?

So we have seen how blood pressure can be used as an indicator of largely chronic effects, and that it is a very useful measurement to keep track of. But what about the more acute side of medicine? 

I was lucky enough to stay in cardiothoracic critical care in my local hospital for a while as part of a work experience scheme with a consultant anaesthetist (a very underrated speciality, I have decided). While I was there, I noticed that they were measuring blood pressure on almost every patient. None of the people on the ward was there for chronic problems, so why were they bothering to measure the blood pressure? 

The answer is that they needed to see whether the heart was working properly, as almost everyone there had just been in or was about to go into surgery for a heart operation. If the heart is pumping blood around the body, it will push against the outside of the arterial walls, which is what we call blood pressure. If the pressure decreases, it is likely that the heart is not pumping the blood so well, and the patient might need to be looked at in more detail.

But that is a very crude way of getting a very vague answer. What I wanted to know was what the blood pressure actually signified about the heart that the doctors were interested in. When I asked the consultant this, he answered me with another question: why do we need such high blood pressure? I'll admit, I didn't understand the question when he first asked me it. 

My first thought was that some of the organs need high blood pressure, such as the kidneys: in the nephron, blood needs to be at high pressure in order to undergo ultrafiltration. But there are very few bits of the body that are like that, so it doesn't make sense to have the whole system running under unnecessary stress. What could be the advantage of having high pressure in the system? Does it have an advantage in itself? No. The advantage of running any fluid system at high pressure is to make the fluid move fast. That's what really matters: how quickly can the blood transport the necessary nutrients to the organs, and take away the waste products.

Again, I thought I'd got it, that we needed to run at such high pressure in order to move the blood around our body fast enough to work properly. Sadly for me, it turns out that the pressure needed to move the blood around our body is much lower than the average blood pressure. All I'd done was work out the question: why do we have such high blood pressure, when the same blood flow could be achieved with much lower pressure?

Looking at it from a purely physical standpoint, it makes no sense that two different pressures in the same system can provide the same blood flow. Where is the pressure being lost? There must be some kind of resistance that we are artificially providing in order to keep flow lower than its maximum. The pressure could be coming from the organs, or the arteries. We already know that only a few organs need the maximum pressure, so it must be coming from the arteries before the blood reaches the tissue it's going to. That can easily be provided by the muscle layer in the vessels, but I still hadn't worked out why it happened, just how it happened.

Why would the body have adapted to provide more resistance in the vascular system, making more work for the heart? Because it's not a fixed system: the muscles in the arteries can relax, reducing the pressure for various tissues, increasing the flow to those organs. This means when any tissue needs to increase the rate it gets its nutrients, the resistance of the vessels supplying that tissue can drop, which makes the flow spike immediately.

So to answer the question, we need high blood pressure so that blood flow to any part of the body can be increased straight away. That doesn't really explain why they measure blood pressure. That'll be in part three.

Friday, 13 January 2012

September: Harvesting Stem Cells and Hydrogen Cars

I've been writing a lot about the new and exciting capabilities of stem cells, but without a big enough supply of them, there is no hope that any of the treatments will ever be applied. When left to their own devices on a plastic culture dish, they do reproduce, but rather than into the useful pluripotent stem cells, they create other body cells, which cannot be used in therapies. So when, in September, a new type of plastic was devised that allowed stem cells to grow and still keep their characteristics, it got us one step closer to the clinical use of these new treatments.

Following on from August's discovery of an enzyme that produces hydrogen from water, the start of the new school year also was the start of MEC technology, or Microbial Electrolysis Cells. Osmotic power stations already capitalise on the potential difference between salt- and freshwater, but these new cells also add a bacteria that produces hydrogen gas to create a self sustaining, relatively cheap method of producing hydrogen for use in cars and other technologies.

In other science: a detector is released that can tell when we're lying, blood vessels are printed on a 3D printer, and a single molecule motor is engineered.