| Literature DB >> 32548697 |
Dániel Pál1, Brigitta Szilágyi2, Márton Berczeli1, Csaba Imre Szalay3, Balázs Sárdy1, Zoltán Oláh1, Tamás Székely4, Gergely Rácz5, Péter Banga1, Zsófia Czinege1, Péter Sótonyi6.
Abstract
Acute aortic catastrophes (AAC), mainly ruptured aneurysms and dissections, lead all other vascular conditions in morbidity and mortality, even if intervention occurs. The aim of our study was to give a descriptive overview of the demographic and pathological characteristics of AAC. Between 1994 and 2013, 80,469 autopsies were performed at Semmelweis University hospitals in Budapest. After collecting the autopsy reports we were able to create the AAC database upon which we conducted our analysis. We found 567 cases of AAC. The cause of death in 120 of them was classified as a non-ruptured aorta with malperfusion or distal embolization. Of the remaining 447 cases, in 305 the cause of death was a ruptured aortic aneurysm (rAA), and in 142 it was a ruptured aortic dissection (rAD). The distribution of rAA cases was 34.4% thoracal, 4.3% thoracoabdominal, and 61.3% abdominal. We found female dominance where the rAA was thoracal. In rAD cases, 84% were Stanford A and 16% Stanford B type. In both groups we found different pathological distributions. In the prehospital group, the number of thoracal ruptures was considerable. 88% of the patients with Stanford A dissection died in the prehospital or perioperative period. The most progressive AACs were ruptures of intrapericardial aneurysms and Stanford A dissections., however survival rate can be elevated by using rapid imaging examination and immediate surgical intervention. We want to highlight that our study contains such gender differences, which are worth to be taken into consideration.Entities:
Keywords: Acute aortic syndrome; Aortic aneurysm; Aortic dissection; Autopsy; Bleeding; Rupture
Mesh:
Year: 2020 PMID: 32548697 PMCID: PMC7471188 DOI: 10.1007/s12253-020-00835-x
Source DB: PubMed Journal: Pathol Oncol Res ISSN: 1219-4956 Impact factor: 3.201
Fig. 1Acute aortic catastrophes, 1994-2014, N=567
Analysis of non-ruptured AAC cases (N=120)
| Distal occlusions (N=120) | N | Total (%) |
| Coronary | 9 | 8 |
| Supraaortic branches | 6 | 5 |
| Visceral branches | 24 | 20 |
| Lower limb artery | 8 | 7 |
| Combination | 9 | 8 |
| Occlusion by intimal flap | 64 | 53 |
| Cause of death (N=120) | Total (%) | |
| Acute heart failure, acute myocardial infarction | 61 | 51 |
| Hemorrhagic shock, consumption coagulopathy | 3 | 3 |
| Acute ischaemic colitis, peritonitis | 13 | 11 |
| Acute renal failure | 1 | 1 |
| Pulmonary embolism, ARDS | 5 | 4 |
| Stroke | 9 | 8 |
| Intraoperative, irreversible, acute circulatory failure | 11 | 9 |
| Postoperative sepsis | 12 | 10 |
| Postoperative, irreversible circulatory failure, ARDS | 5 | 4 |
Fig. 2a Age and gender differencies in rAA group, 1994-2014, N=305. b Age and gender differencies in rAD group, 1994-2014, N=142
Fig. 3a Gender differencies in rAA localisation, 1994-2014, N=305. b Gender differences in direct of rupture, rAA group, 1994-2014, N=305
rAD clinicopathology, 1994-2014 (N=142)
| Types | Direction of rupture | |||||
|---|---|---|---|---|---|---|
| rAD cases (N=142) | ||||||
| Bronchus | Thorax | Pericardium | Abdomen | Retroperitoneum | Sum (%) | |
| A | 0 | 12 | 107 | 0 | 0 | 119 (84) |
| B | 1 | 11 | 4 | 2 | 5 | 23 (16) |
| Sum (%) | 1 (1) | 23 (16) | 111 (78) | 2 (1) | 5 (4) | |
| Males (N=88) | ||||||
| A | 0 | 8 | 66 | 0 | 0 | 74 (84) |
| B | 0 | 5 | 3 | 1 | 5 | 14 (16) |
| Sum (%) | 0 (0) | 13 (15) | 69 (78) | 1 (1) | 5 (6) | |
| Females (N=54) | ||||||
| A | 0 | 4 | 41 | 0 | 0 | 45 (83) |
| B | 1 | 6 | 1 | 1 | 0 | 9 (17) |
| Sum (%) | 1 (2) | 10 (19) | 42 (78) | 1 (2) | 0 (0) | |
Pathological differences depending on the place of death, rAA group, 1994-2014 (N=305)
| The location of the rAA | |||||||
|---|---|---|---|---|---|---|---|
| I. group | II. group | III. group | Sum | ||||
| N (%) | in subtype % | N (%) | in subtype % | N (%) | in subtype % | N (%) | |
| Ascending | 39 (13) | 71 | 9 (3) | 16 | 7 (2) | 13 | 55 (18) |
| Arcus | 9 (3) | 41 | 7 (2) | 32 | 6 (2) | 27 | 22 (7) |
| Descending | 8 (3) | 29 | 7 (2) | 25 | 13 (4) | 46 | 28 (9) |
| Thoracoabdominal | 1 (0) | 8 | 5 (2) | 38 | 7 (2) | 54 | 13 (4) |
| Suprarenal | 4 (1) | 33 | 3 (1) | 25 | 5 (2) | 42 | 12 (4) |
| Infrarenal | 50 (15) | 29 | 45 (14) | 27 | 80 (23) | 44 | 175 (57) |
| Sum | 111 (36) | 76 (25) | 118 (39) | ||||
| The direction of the rupture | |||||||
| Pericardium | 41 (13) | 73 | 10(3) | 18 | 5 (2) | 9 | 56 (18) |
| Thorax | 13 (4) | 27 | 11 (4) | 22 | 25 (8) | 51 | 49 (16) |
| Bronchus | 2 (1) | 67 | 1 (0) | 33 | 0 (0) | 0 | 3 (1) |
| Retroperitoneum | 42 (14) | 30 | 36 (12) | 26 | 63 (21) | 45 | 141 (46) |
| Abdomen | 13 (4) | 29 | 14 (5) | 31 | 18 (6) | 40 | 45 (15) |
| Intestinal | 0 (0) | 0 | 4 (1) | 36 | 7 (2) | 64 | 11 (4) |
| Sum | 111 (36) | 76 (25) | 118 (39) | ||||
I. group: prehospital cases (N=111)
II. group: preoperative cases (N=76)
III. group: perioperative and postoperative cases (N=118)
Pathological differences depending on the place of death, rAD group, 1994-2014, (N=142)
| The location of the rAD | |||||||
|---|---|---|---|---|---|---|---|
| I. group | II. group | III. group | |||||
| N (%) | in subtype % | N (%) | in subtype % | N (%) | in subtype % | Sum (%) | |
| Stanford A | 48 (34) | 40 | 57 (40) | 48 | 14 (10) | 12 | 119 (84) |
| Stanford B | 6 (4) | 26 | 9 (6) | 39 | 8 (6) | 35 | 23 (16) |
| Sum (%) | 54 (38) | 66 (46) | 22 (15) | ||||
| The direction of the rupture | |||||||
| Pericardium | 50 (35) | 45 | 50 (35) | 45 | 11 (8) | 10 | 111 (78) |
| Thorax | 2 (1) | 9 | 13 (9) | 57 | 8 (6) | 35 | 23 (16) |
| Bronchus | 0 (0) | 0 | 1 (1) | 100 | 0 (0) | 0 | 1 (1) |
| Retroperitoneum | 1 (1) | 20 | 1 (1) | 20 | 3 (2) | 60 | 5 (4) |
| Abdomen | 1 (1) | 50 | 1 (1) | 50 | 0 (0) | 0 | 2 (1) |
| Sum (%) | 54 (38) | 66 (46) | 22 (15) | ||||
I. group: prehospital cases (N=54)
II. group: preoperative cases (N=66)
III. group: perioperative and postoperative cases (N=22)