The worldwide pandemic of obesity and diabetes is devastating in severity. Over two billion adults worldwide (30% of the population) are either overweight (BMI >25 kg/m2) or obese (BMI >30 kg/m2)1. This can come along with metabolic complications, such as type 2 diabetes, hypertension, and dyslipidemia, leading to increased morbidity and mortality. Obesity increases the overall mortality and the prevalence of cancer2. Due to the lack of any effective noninvasive treatments, bariatric surgery represents the only option that can lead to long-term, sustained weight loss3,4. A number of different surgical methods have been developed, but the sleeve gastrectomy (SG) and Roux-en-Y gastric bypass (RYGB) are the two procedures most commonly used in clinical practice. During the SG procedure, 80% of the initial volume of the stomach is removed; thus, this technique is one of the restrictive surgeries that improves satiety. The RYGB is one of the restrictive-malabsorptive techniques. During RYGB, a small gastric pouch (1-2% of the total gastric volume) is created and the intestine is rearranged into a Y-shape, which delays digestion and the absorption of nutrients. These two techniques lead to significant body weight reductions and general improvements in frequently-associated comorbidities (e.g., hypertension, type 2 diabetes, and dyslipidemia)3, with a higher efficiency seen in RYGB. However, the molecular mechanisms behind the pleiotropic beneficial effects of the bariatric surgeries are often not fully elucidated. Due to the numerous genetically-modified strains available, a mouse model is the most convenient animal model to explore these molecular mechanisms.
However, bariatric procedures are difficult to directly adapt to small animal models and require high surgical dexterity. While SG can be easily performed in rodents with a very good survival rate, RYGB is lethal in mice due to severe bowel obstructions5. Different modified RYGB techniques have been proposed to counteract this problem, notably the oesojejunostomy5. Here, we present another alternative: the gastrojejunostomy without a stomach excision. This modified RYGB reproduces most of the beneficial effects observed in humans (i.e., a significant body weight reduction and an improvement in glucose and lipid homeostasis).
This manuscript aims to summarize and discuss the technical and experimental details of SG and RYGB in mice and to facilitate these procedures with the help of videos. A specific highlight will be made regarding the optimization of the preoperative and postoperative healthcare protocols that allow the reduction of vitamin and iron deficiencies.