Monday, October 15, 2012

Adults Hypertension Part I

Hypertension in Adults: Part 1. Prevalence, types, causes and effects

Author(s): Dr Muhammad Ilyas, Specialist Registrar Acute Medicine, St Mary’s Hospital Isle of Wight, UK

Introduction

Arterial hypertension is a common and preventable cardiovascular risk factor, leading to about 1.7 million deaths/year worldwide.

Prevalence

The incidence and prevalence of hypertension depends upon the racial composition of population and criteria used to define hypertension (see Table 1). The prevalence of hypertension in the USA ranges from 4% in 18-29 years olds to 65% in those aged 80 years and over. Prevalence of hypertension in South Sudan is unknown but a review of studies in sub-Saharan Africa1 showed it was higher in urban than rural areas and, like other races, increased with age. In most studies reviewed:
  • Less than 40% of people with blood pressure above the defined normal range had been detected
  • Of people with previously diagnosed hypertension, less than 30% were on drug treatment.
Table 1. Classification of BP levels (according to The British Hypertension Society)
Category
Systolic BP (mm Hg)
Diastolic BP (mm Hg)
Optimal
< 120
< 80
Normal
< 130
< 85
High Normal
130 - 139
85 - 89
Grade 1 (mild)
140 - 159
90 - 99
Grade 2 (moderate)
160 - 179
100 - 109
Grade 3 (severe)
> 180
> 110
Hypertension occurs more frequently in ‘black’ compared to ‘white’ populations and is associated with:
  • A higher incidence of cerebrovascular and renal complications
  • A greater tendency to develop left ventricular hypertrophy
  • Enhanced sodium retention with a higher incidence of salt-sensitive hypertension, expanded plasma volume and A higher prevalence of low plasma renin activity.
  • Reduced sodium-potassium ATPase activity with a tendency towards increased intracellular sodium and calcium concentrations
  • Greater frequency of proteinuria.

Types of hypertension

There are two types:
  1. Primary or essential hypertension (97-98%) has no clear underlying cause but appears to be the result of an interplay of complex genetic and environmental factors.
  2. Secondary hypertension (2-3%) is caused by a specific underlying mechanism usually involving kidneys or endocrine system.

Mechanisms in primary hypertension

Several patho-physiological mechanisms contribute to the development of primary hypertension. The factors include:
  • Genetics
  • High salt intake
  • Low physical activity
  • Obesity
  • Insulin resistance
  • Renin – angiotension system
  • Sympathetic nervous system
  • Intrauterine nutrition and low birth weight

Causes of secondary hypertension

These are unusual but are important because the cause may be curable:
  1. Endocrine causes:
    • Cushing’s syndrome
    • Conn’s syndrome
    • Phaeochromocytoma
    • Hyper / Hypothyroidism
    • Acromegaly
    • Hyperparathyroidism
    • Exogenous hormones, e.g. contraceptive pills, glucocorticoids.
  2. Renal causes:
    • Glomerulonephritis
    • Diabetic nephropathy
    • Polycystic kidney disease
    • Renal artery stenosis.
  3. Other causes:
    • Coarctation of the aorta
    • Pregnancy associated hypertension
    • Alcohol
    • Acute stress.

Effects of Hypertension

Damage to organs (end organ damage) appears in two main forms:
  1. Obstruction to arterial blood flow: atherosclerosis causing cerebral infarction (“stroke”), coronary and peripheral arterial disease.
  2. Rupture of arteries: e.g. cerebral hemorrhage (“stroke”) and aortic dissection.
Organ damage can also result from drugs used for treatment of hypertension. Other common complications of hypertension include:
  • Atrial fibrillation
  • Left ventricular hypertrophy and failure
  • Kidney damage leading to failure
  • Retinopathy.
  • Black race
  • Youth
  • Male gender
  • Persistent diastolic BP > 115 mm Hg
  • Smoking
  • Diabetes Mellitus
  • Hypercholesterolemia
  • Obesity
  • Excess alcohol intake
  • Evidence of end organ damage.

Risk Factors for a poor prognosis in hypertension

  • Black race
  • Youth
  • Male gender
  • Persistent diastolic BP > 115 mm Hg
  • Smoking
  • Diabetes Mellitus
  • Hypercholesterolemia
  • Obesity
  • Excess alcohol intake
  • Evidence of end organ damage. 

About Blood Types

The Importance of Blood Types 
Blood Type  Percent
of Population
Can give
to types: 
Can receive
from types: 
O Positive 38%  O+, A+, B+, AB+   O+, O- 
O Negative 7% ALL TYPES  O-
A Positive 34%  A+, AB+   O+, O-, A+, A- 
A Negative  6% A+, A-, AB+, AB- A-, O- 
B Positive  9%  B+, AB+   O+, O-, B+, B- 
B Negative 2% B+, B-, AB+, AB-  B-, O-
AB Positive  3%  AB+  ALL TYPES 
AB Negative  1%  AB+, AB-   O-, A-, B-, AB- 
Anyone can receive type O– red blood cells, so people with type O- blood are known 
as “universal blood donors.” 

AB+ donors can receive blood from any blood type, so they are called “universal 
recipients.” In addition, AB plasma donors can give to all blood types, so AB donors 
are called “universal plasma donors.” CR/DRD/I-048 5/24/07 

 

Human Blood Circulation


Introduction to human body blood circulation:

In human body Blood circulation is essential for a healthy body. Oxygen rich blood is sent to the body organs, tissues and cells to nourish them and the waste products are disposed of through the same system. The lungs, the heart and the blood vessels need to work together to form the blood circulatory system. The pumping of the heart forces the blood on its journey. The blood circulation systems of human body have three distinct parts: pulmonary circulation, coronary circulation, and systemic circulation.

Human Body Pulmonary Circulation:

Circulation of blood from the heart to the lungs and back to the heart again. The veins bring waste-rich blood back to the heart, enters the right atrium through two large veins called vena cavae. The right atrium is filled with the waste-rich blood and contracts, pushing the blood through a one-way valve into the right ventricle. The right ventricle fills, then contracts, pushing the blood into the pulmonary artery which leads to the lungs. In the lung capillaries, the exchange of oxygen and carbon dioxide takes place. Now fresh oxygen-rich blood enters the pulmonary veins and returns to the heart, through the left atrium. The blood rich in oxygen then passes through a one-way valve into the left ventricle where it will exit the heart through the main artery, called the aorta. The left ventricle's contracts and forces the blood into the aorta and the blood starts its circulation throughout the body.

Human Body Systemic Circulation:

Circulation of blood is throughout the body. Blood vessels are responsible for supplying nourishment and oxygen to all of the tissue located throughout the body. Blood rich in oxygen enters the blood vessels through the heart's main artery called the aorta. The contraction of left ventricle of the heart forces the blood into the aorta which then branches into many smaller arteries which run throughout the body. Blood rich in oxygen enters the capillaries where the oxygen and nutrients are released. Then waste is collected and the waste-rich blood flows into the veins in order to circulate back to the heart where pulmonary circulation will allow the exchange of gases in the lungs.

Human Body Coronary Circulation:

Circulation of blood is in the heart. Providing nourishment to the tissues of the heart through the capillaries located in the heart.