Hypertensive Bilateral Thalamic Hemorrhage: Distribution of Ruptured Blood Vessels and Hematoma and Considerations on

Shigeki Takeda1, Hitoshi Takahashi2, Seiichi Hirata1

  • 1Department of Pathology, Niigata Neurosurgical Hospital, Niigata, Japan.

The ruptured blood vessels of a 57-year-old Japanese man who had died 5 days after bilateral hypertensive thalamic hemorrhage (HTH) were investigated by preparing 9 paraffin-embedded tissue blocks, all containing the hematomas. Each block was cut serially into 6-μm-thick sections. The first of every 18 sections was stained with Victoria blue and hematoxylin-eosin, the second with elastica-Goldner, and the third with phosphotungstic acid-hematoxylin. Several additional stainings, including immunostaining for α-smooth muscle actin and synaptophysin, were performed as necessary. In the large hematoma on the right, 18 cross-sections of ruptured blood vessels, comprising 12 arteries and 6 veins, were observed in the area supplied by the thalamoperforate arteries, thalamogeniculate arteries, and some of the posterior choroidal arteries. With an anteroposterior distribution, these ruptured vessels were observed in the middle third to posterior third of the thalamus, with arteries especially concentrated in the middle third. The small hematoma on the left was distributed mainly in the internal capsule. Two cross-sections of ruptured arteries, one of which had ruptured on the internal capsule side, were observed in the lateral part of the ventral posterolateral nucleus of the thalamus. In the hematomas, degeneration of medial smooth muscle cells due to arteriolosclerosis was observed in 14 cross-sections of ruptured arteries encountered, one of which showed a ruptured dissecting aneurysm. Microaneurysm or lipohyalinosis was not evident in any of them as well as the other non-ruptured arteries within the hematomas. The arteries surrounding the hematomas showed fibrinoid degeneration, lipohyalinosis, disruption of the internal elastic lamina, and degeneration and loss of smooth muscle cells in the media. Even though serial sections were examined at the rupture sites, no aneurysm-like structure was found. We concluded that HTH essentially arises from arterial wall fragility due to hypertension, and that aneurysm formation may not be essential.

Related Concept Videos

Venous Thrombosis I: Introduction01:30

Venous Thrombosis I: Introduction

Venous thrombosis, the most common disorder of the veins, involves the formation of a thrombus or blood clot associated with vein inflammation. It can be classified as either superficial vein thrombosis or deep vein thrombosis.Superficial Vein Thrombosis: This involves the formation of a thrombus in a superficial vein, usually the greater or lesser saphenous vein. Though less severe than deep vein thrombosis (DVT), SVT can lead to complications if untreated.Deep Vein Thrombosis (DVT): This...
535
Introduction to Hemostasis01:05

Introduction to Hemostasis

Hemostasis is a complex physiological process that prevents excessive bleeding when a blood vessel is injured. It's crucial for maintaining the integrity of the circulatory system, as it ensures that our blood remains fluid while still within the vascular network and yet clots to prevent blood loss upon vessel injury.
The three phases of hemostasis involve many clotting factors present in plasma and several substances released by platelets and injured tissue cells. It is a fast, localized,...
15.2K
Vascular Spasm01:16

Vascular Spasm

The vascular phase, also known as vasospasm, is the initial stage of hemostasis, crucial for preventing excessive bleeding when a blood vessel is injured. After a vessel is cut, nerves in the damaged area trigger pain and other sensory impulses. Simultaneously, the smooth muscles in the vessel wall contract, resulting in a vascular spasm. This contraction reduces the vessel's diameter at the injury site, slowing or stopping blood loss through the vessel wall. Vascular spasms typically last...
4.2K
Disorders of Hemostasis01:24

Disorders of Hemostasis

Hemostasis, the process that stops bleeding after a blood vessel injury, is crucial for maintaining the integrity of the circulatory system. However, disorders of hemostasis can disrupt this delicate balance, leading to either excessive clotting or bleeding. These disorders can be broadly classified into thromboembolic disorders and bleeding disorders.
Thromboembolic Disorders
Two factors primarily cause thromboembolic conditions.
2.4K
Arteries of the Head and Neck01:26

Arteries of the Head and Neck

The human body's intricate network of arteries ensures that every organ system receives the necessary oxygen and nutrients for optimal function. The arterial network in the head and neck region is particularly complex, providing vital blood flow to the brain, eyes, and other critical structures. Prominent arteries in this region include the internal carotid arteries and the vertebral arteries.
The internal carotid arteries supply blood to the anterior portion of the cerebrum. They enter the...
3.8K
The Arch of Aorta01:10

The Arch of Aorta

The coronary arteries, originating from the ascending aorta, bifurcate from two sinuses located within the ascending aorta. Positioned just above the aortic semilunar valve, these sinuses house essential aortic baroreceptors and chemoreceptors, crucial for maintaining cardiac function. The left coronary artery and the right coronary artery branch off from the left posterior and anterior aortic sinuses, respectively.
Encircling the heart, the coronary arteries form a ring-like structure before...
2.1K