Why do some fish die from white spot disease when others don’t?

I get this question a lot. This paper attempts to explains that the genetics of the fish play a large role in resistance to the white spot parasite.

;

Journal of Fish Diseases
Volume 35, Number 12 (December 2012)
Susceptibility of three strains of blue catfish, Ictalurus furcatus(Valenciennes), to Ichthyophthirius multifiliis
Authors: D-H Xu, P H Klesius, B G Bosworth, N Chatakondi
Author Affiliations:
no affiliations available
Source: Journal of Fish Diseases, Volume 35, Number 12 (December 2012)
Page Numbers: 887 – 895
Available Full Text:
Full Text: Subscription Required to view full text
Format: PDF
Size: unknown
Location: Publisher’s Site
Authentication: EBSCOhost EJS
Abstract: This study compared the susceptibility of three blue catfish strains (D&B,USDA101 and USDA102) to the parasite Ichthyophthirius multifiliis(Ich). In Trial I, a cohabitation study (all strains stocked communally) was conducted and fish were exposed to theronts at 0, 200, 1000, 5000 or 25 000 theronts fish-1, respectively. All fish died when exposed to theronts at 5000 or 25 000 theronts fish-1. When exposed to 1000 theronts fish-1, USDA102 strain of blue catfish showed significantly lower mortality (78.5%) compared to USDA101 and D&B strains (92.7% and 100%). In Trial II, the same three strains of blue fish were evaluated for their susceptibility to Ich with strains challenged in separate tanks by adding Ich theronts at 0, 200 and 1000 theronts fish-1, respectively. All D&Band USDA101 blue catfish died; however, 42.3% of USDA102 strain survived the infection when exposed to 1000 theronts per fish. The results indicate that there are differences among strains of blue catfish for susceptibility to Ich, and these differences will be useful in the development of improved catfish germplasm for commercial aquaculture.
Citation: D-H Xu, P H Klesius, B G Bosworth, N Chatakondi . Susceptibility of three strains of blue catfish, Ictalurus furcatus(Valenciennes), to Ichthyophthirius multifiliis. Journal of Fish Diseases, Volume 35, Number 12 (December 2012), pp. 887-895, ;
URL: http://ejournals.ebsco.com/direct.asp?ArticleID=4913A625B97643BE36D9

Dr Loh is awarded the George Alexander Foundation International Fellowship at the 22nd Annual Fellowship Awards tonight.

The ceremony will be held at Melbourne Town Hall this evening. There will be short speeches from the Lord Mayor, The Hon Robert Doyle, our CEO Bella Irlicht AM, the Secretary of the Department of Education and Early Childhood Development, Richard Bolt and a current Fellow, Ros Walker. The ISS Institute Founder, Sir James Gobbo AC, CVO will also participate in the presentations. At the conclusion of the speeches, the Fellowship Certificates will be presented.
20121112-135946.jpg
The aim of this Fellowship is to promote the acquisition of higher-level skills and an appreciation of international best practice in several areas. Dr Loh has been selected because of his passion and it is genuine recognition of the significant contribution he has already made and will be making in the years to come. Letters of support can be accessed by following the link (https://thefishvet.com/2012/05/19/congratulations-to-dr-richmond-loh-who-has-been-awarded-the-george-alexander-foundation-international-fellowship-2012/).
With this award, Dr Loh plans to attend Seavet course (http://conference.ifas.ufl.edu/ame/seavet/) during June 2013 in Florida, USA. The 2-week course will cover marine megafauna subjects such as sharks, stingrays, fish, pinnipeds, cetaceans, manatees, turtles and penguins.  Dr Loh has been gathering a list of relevant contacts so that the new learnings can be disseminated upon his  return.

If you  wish to be on this mailing list, please reply by email (to thefishvet@gmail.com) with the following information:

  • Full Name
  • Job Title
  • Organisation
  • Phone Number
  • email

Also, you may wish to register with Dr Loh’s various social media platforms (see links below) for more informal chatter about aquatic animal health.

Follow TheFishVet on: Facebook “Fin Page” – YouTube – Blog – Linkedin – Twitter

Yours sincerely,

Dr Richmond Loh

BSc, BVMS, MPhil (Vet Path), MANZCVS (Aquatics), MANZCVS (Pathobiology), DipPM.

Veterinarian | Adjunct Senior Lecturer Murdoch University | WAVMA President-elect |

Secretary Aquatic Animal Health Chapter – Australian and New Zealand College of Veterinary Scientists (ANZCVS)

The Fish Vet, Perth, Western Australia, AUSTRALIA. Mobile Veterinary Service for fish and other aquatic creatures.
http://www.thefishvet.com.au
Ph: +61 (0)421 822 383

 

Just bumped into a fresh grad vet student at Perth airport just then.

Off to Melbourne to play with some fishes, meet some fishy colleagues, attend an awards ceremony and a wedding.

‘Cells from hell’ (previously known as Pfeisteria hysteria).

“Pfiesteria piscicida and a second species, Pfiesteria shumwayae, have been implicated as the primary causative agents of well over a billion fish deaths… When human flesh comes in contact with water infested by the Cells, blisters and abscesses can form on the exposed skin as well as on the chest and face. According to researchers at the North Carolina State University, other symptoms of Pfiesteria piscicida exposure are a “drugged” effect; red eyes, severe headaches, blurred vision, nausea/vomiting, asthma-like difficulty breathing, kidney and liver dysfunction, acute short-term memory loss, and serious difficulty being able to read, remember one’s own name, dial a telephone number, or do simple arithmetic…. ability to produce toxins that can aerosolise. In this free-moving form, the toxins can be inhaled to affect more people and animals…”

Read more here –
http://www.abc.net.au/science/slab/cells/default.htm

Shared by my colleague, Dr Chris Hawkins.

Too many love bites led to the separation of these leopard sharks.

Cute story shared by my friend Yancey.

http://www.abc.net.au/news/2012-11-27/breeding-leopard-shark-takes-one-too-many-bites/4395654

The living fossil – Coelacanth – a life history.

This is such an interesting read and thought I’d share it with you.

Is this fish the missing link? Or does it suggest that evolution doesn’t exist?

madjellyfish.blogspot.co.uk/2012/11/the-coelacanth-living-fossil-tetrapod.html?m=1


Yours sincerely,

Dr Richmond Loh
BSc BVMS MPhil MANZCVS (Aq & Pathol)
The Fish Vet, Perth, Western Australia.
Veterinary Medicine for fish.
http://www.thefishvet.com.au
Ph: +61 (0)421 822 383

All you wanted to know about Aeromonas hydrophila.

At this time of the year, fish keepers and aquaculturists may be a bit apprehensive about Aeromonas infection. Does it really cause disease? When does it cause disease? Can we tell the difference between normal strains and bad strains of the bacteria?

So, I’ve taken the liberty to write a summary about the bug. Sorry it’s a bit techy.

The passages below have been paraphrased from Austin B, Austin DA: Bacterial Fish Pathogens: Disease in Farmed and Wild Fish. 4th edition. Springer-Praxis, Goldalming, 2007.

INTRODUCTION
Aeromonas hydrophila (previously A. formicans and A. liquefaciens) can cause haemorrhagic septicaemia, red sore disease and fin rot. It has a worldwide distribution, is rife in freshwater environments (including on aquatic plants, fish and fish eggs) and can affect many freshwater fish species and occasionally, marine fish. There is some contention over whether this is a primary pathogen or merely a secondary invader of already compromised hosts.

Disease signs include eroded fins, haemorrhages on the skin, sloughing of scales, skin ulcers and haemorrhaging in the intestine wall. Exopthalmia (pop-eye) and ascites with subcutaneous oedema (dropsy) can also be observed. Mortality rate can be high.

HOW IS THE BACTERIA IDENTIFIED?
Generally speaking, A. hydrophila is a Gram-negative, straight bacterial rod, and they are motile by a single polar flagellum, plus or minus lateral flagella. It is speculative whether or not the fish isolates belong as A. hydrophila or in any of the other Aeromonas Hybridisation Groups. It is apparent that the bacteria has considerable exo-enzyme potential including haemolysins, serine and metallo-protease and some of which have relevance in fish pathology. There is definitely marked phenotypic, biochemical, serological and genotypic differences (e.g. presence or absence of the 21kb plasmid detected in pathogenic isolates associated with ulcerative disease syndrome) and improvements in aeromonad taxonomy may eventuate with the emergence of other taxa as fish pathogens.

CAN WE TELL WHICH ISOLATES ARE BAD?
Are we able to identify which A. hydrophila are pathogenic, and which ones aren’t? This could be a million dollar question that a lot of work has not found an easy answer. There is no direct correlation between virulence and haemagglutination. The surface array matrix (S-layer that influences bacterial interaction with its environment) that has been shown to be a prerequisite for virulence in A. salmonicida does not apply to A. hydrophila. Bacterial surface-binding expression to I-labelled collagen, fibronectin and laminin (common to isolates from diseased fishes) cannot be used because its properties were influenced by in vitro culture conditions. One study reported that precipitation of the bacteria after boiling was an important measure of virulence, but this is debatable.

What has shown promise in identifying virulence include the action of their adhesins (these situated on bacteria’s outer membrane protein [OMP], to attach to selected host cells/tissue proteins [e.g. collagen, fibronectin, serum proteins and glycoproteins], of which AHA1 [a 43 kDa protein] has shown to be present in virulent strains), the presence of a 40 kDa protein in their OMP, the presence of haemolytic (heamolysins) and proteolytic (proteases such as caseinase, elastase, and metallo- and serine proteases) extracellular products (ECP). A further study identified acetylcholinestrase (a 15.5 kDa polypeptide) in the ECP and regarded this to be a major lethal factor with possible neurotoxic activity. Some strains show enterotoxigenicity and those that possess the O-antigen (somatic antigen) and K-antigen were present in most virulent isolates. Comparison of virulent and avirulent isolates using molecular techniques (suppression subtractive hybridisation) identified 69 genemic regions absent from the latter. Genes considered to represent known virulence attributes include haemolysin, histone-like protein, oligoprotease A, OMP and multi-drug resistance protein. Other genes encoded synthesis of O-antigen.

WHAT ARE THE RISK FACTORS TO YOUR POND?
One of the biochemical characteristics of A. hydrophila is that it reduces nitrates. Given this, and the fact that high levels of nitrates (dirty pond with insufficient water changes) are immunosuppressive, could we then infer that ponds with high levels of nitrates could be a predisposing factor? Having said this, could being too clean be harmful? The other school of thought is to maintain a good balance of a diversity of bacterial flora.
The bacteria exhibit a chemotactic response to the mucus of freshwater fish. The evidence points to a stress-mediated disease condition which is influenced by elevated water temperatures (temperatures above 9.4 degrees Celsius). The presence of pollutants increases susceptibility to infection.

One in vitro study showed that calcium in the growth medium enhanced the expression of the bacterial extracellular matrix protein surface receptors. These surface receptors are important for the bacteria to latch on to the fish. Extrapolating this, could it mean that water with a higher calcium content may be a risk factor?

Many bacterial pathogens utilise iron and the haemolysins in A. hydrophila are iron-regulated. Could an elevated iron content in the water be a risk factor?

SUMMARY
Aeromonas hydrophila is ubiquitous, it is present in every freshwater fish pond. It has the potential to cause disease, usually in association with other factors. Current methods are unable to identify virulent versus avirulent strains. Risk factors include host health, environmental factors and bacterial virulence.

Sea butterflies at risk due to ocean acidification.

See article here – http://mobile.news.com.au/breaking-news/world/acidity-proves-a-problem-for-sea-butterfly/story-e6frfkui-1226523943322